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U Vikipediyi ye statti pro inshi znachennya cogo termina GMO znachennya Gigantskij magnetoopir GMO angl Giant magnetoresistance GMR kvantovo mehanichnij efekt sho sposterigayetsya u metalevih plivkah yaki skladayutsya z feromagnitnih i providnih nemagnitnih shariv Efekt polyagaye u znachnij zmini elektrichnogo oporu takih struktur pri zmini vzayemnogo napryamku namagnichenosti susidnih magnitnih shariv Napryamkom namagnichenosti mozhna keruvati napriklad shlyahom zastosuvannya zovnishnogo magnitnogo polya V osnovi efektu lezhit rozsiyannya elektroniv sho zalezhit vid napryamku spinu Za vidkrittya gigantskogo magnetooporu v 1988 roci fiziki Alber Fert Universitet Parizh Pivden XI i Peter Gryunberg Yulihskij doslidnickij centr buli nagorodzheni Nobelivskoyu premiyeyu z fiziki u 2007 roci Osnovnimi sferami zastosuvannya efektu ye davachi magnitnogo polya sho vikoristovuyutsya v zhorstkih diskah biosensorah priladah mikroelektromehanichnih sistem ta inshih Strukturi z gigantskim magnetooporom zastosovuvalis u magnitorezistivnij operativnij pam yati yak logichni komirki dlya zberigannya odnogo bitu informaciyi U literaturi termin gigantskij magnetoopir inkoli plutayut iz kolosalnim magnetooporom en fero i antiferomagnitnih napivprovidnikiv 1 2 yakij ne pov yazanij z bagatosharovimi strukturami Zmist 1 Matematichne formulyuvannya 2 Istoriya vidkrittya 2 1 Peredistoriya 2 2 Eksperiment i jogo poyasnennya 3 Teoriya 3 1 Osnovni polozhennya 3 1 1 Spin zalezhne rozsiyannya 3 1 2 CIP i CPP geometriyi pidklyuchennya 3 1 3 Prohodzhennya strumu kriz magnitnu nadgratku 3 2 Matematichnij opis 3 2 1 Rezistorna model dlya CIP i CPP struktur 3 2 2 Model Valeta Ferta 4 Metodi otrimannya 4 1 Materiali i eksperimentalni dani 4 2 Tipi GMO 4 2 1 GMO v plivkah 4 2 1 1 Antiferomagnitni nadgratki 4 2 1 2 Spinovi klapani na obminnomu zmishenni 4 2 1 3 Bagatosharovi strukturi bez zv yazku psevdospinovi klapani 4 2 1 4 Inversnij efekt GMO 4 2 2 GMO u zernistih strukturah 5 Vikoristannya 5 1 Sensori na spinovih klapanah 5 1 1 Zagalna shema 5 1 2 Realizaciya u zhorstkih diskah 5 2 Magnitna operativna pam yat 5 3 Inshi zastosuvannya 6 Div takozh 7 Primitki 7 1 Komentari 7 2 Dzherela 8 Literatura 8 1 Statti 8 2 Knigi 9 Posilannya v internetiMatematichne formulyuvannya RedaguvatiMagnetooporom nazivayut zalezhnist elektrichnogo oporu zrazka vid velichini zovnishnogo magnitnogo polya Jogo harakterizuyut velichinoyu d H R 0 R H R H displaystyle delta H frac R 0 R H R H nbsp de R 0 displaystyle R 0 nbsp opir zrazka za vidsutnosti magnitnogo polya a R H displaystyle R H nbsp jogo opir v magnitnomu poli z napruzhenistyu H displaystyle H nbsp 3 4 Na praktici takozh zastosovuyut alternativni formi zapisu sho vidriznyayutsya znakom virazu ta vikoristovuyut pitomij elektrichnij opir 1 5 Inkoli vikoristovuyut vidnoshennya zmini oporu do jogo znachennya v nulovomu poli 6 Termin gigantskij magnetoopir vkazuye na te sho velichina d H displaystyle delta H nbsp dlya bagatosharovih struktur znachno perevishuye anizotropnij magnetoopir yakij yak pravilo ne perevishuye kilkoh vidsotkiv 7 8 Istoriya vidkrittya Redaguvati nbsp GMO rezultati Albera Ferta i Petera Gryunberga 1988 rik zmina oporu Fe Cr nadgratok za temperaturi 4 2 K pri prikladanni zovnishnogo magnitnogo polya napruzhenistyu H Zovnishnye pole i strum spryamovani vzdovzh osi 110 Pravoruch strilkoyu vkazano najbilshu dosyagnutu zminu u vidsotkah Hs pole nasichennya K 1 Efekt GMO bulo eksperimentalno vidkrito u 1988 roci dvoma naukovimi kolektivami nezalezhno odin vid odnogo laboratoriyami Albera Ferta i Petera Gryunberga Praktichne znachennya cogo vidkrittya bulo vidznacheno prisudzhennyam Fertu i Gryunbergu Nobelivskoyi premiyi z fiziki u 2007 roci 9 Peredistoriya Redaguvati Pershi matematichni modeli sho opisuvali vpliv namagnichenosti materialiv na ruhlivist nosiyiv zaryadu v nih zavdyaki nayavnosti spinu z yavilis she u 1936 roci Eksperimentalni fakti yaki dozvolyali peredbachiti mozhlivist pidsilennya efektu zalezhnosti oporu vid magnitnogo polya tobto zbilshennya d H displaystyle delta H nbsp buli vidomi z 1960 h Naprikinci 1980 h fizikami bulo dobre vivcheno anizotropnij magnetoopir 10 11 ale velichina d H displaystyle delta H nbsp dlya cogo efektu ne perevishuvala kilkoh vidsotkiv 7 Eksperimentalni doslidzhennya u napryamku zbilshennya d H displaystyle delta H nbsp stali mozhlivimi z poyavoyu metodiv na kshtalt molekulyarno promenevoyi epitaksiyi yaka dozvolila vigotovlyati tonki bagatosharovi plivki tovshinoyu v odinci nanometriv 12 Eksperiment i jogo poyasnennya Redaguvati Fert i Gryunberg doslidzhuvali efekti pov yazani z elektrichnim oporom struktur sho vklyuchali v sebe feromagnitni ta neferomagnitni materiali Zokrema Fert zajmavsya providnistyu bagatosharovih plivok a Gryunberg u 1986 roci vidkriv obminnu vzayemodiyu antiferomagnitnogo harakteru v plivkah Fe Cr 12 U roboti v yakij bulo zayavleno pro vidkrittya efektu doslidzhuvavsya magnetoopir nadgratok 001 Fe 001 Cr V comu eksperimenti na ob yemnocentrovanu kubichnu gratku GaAs u visokomu vakuumi nanosilisya shari zaliza i hromu za temperaturi pidkladki blizko 20 C 13 Za tovshini shariv Fe v 30 A ta variyuvannya tovshini nemagnitnogo hromovogo prosharku mizh nimi vid 9 do 30 A zbilshennya tovshini prosharkiv hromu v nadgratci poslablyuvalo antiferomagnitnij zv yazok mizh sharami zaliza ta polem rozmagnichuvannya Ostannye takozh zmenshuvalos pri zbilshenni temperaturi vid 4 2 K do kimnatnoyi Zmina tovshini nemagnitnih shariv privodila do suttyevogo zmenshennya zalishkovoyi namagnichenosti u petli gisterezisu Bulo pokazano silnu zalezhnist oporu zrazka zmina do 50 vid velichini zovnishnogo magnitnogo polya za temperaturi 4 2 K U statti Ferta 1988 roku novij efekt bulo nazvano gigantskim magnetooporom abi pidkresliti jogo znachnu velichinu u porivnyanni z anizotropnim magnetooporom 13 14 Avtori vidkrittya takozh visunuli pripushennya sho v osnovi efektu lezhit tak zvane spin zalezhne rozsiyannya elektroniv u nadgratci zalezhnist oporu shariv vid vzayemnoyi oriyentaciyi yihnoyi namagnichenosti ta spiniv elektroniv 13 Teoretichnij opis GMO dlya riznih napryamkiv strumu bulo zrobleno protyagom kilkoh nastupnih rokiv Napryamok strumu vzdovzh shariv tak zvana CIP geometriya angl current in plane strum v ploshini v klasichnomu nablizheni bulo doslidzheno R Kemli u 1989 roci 15 a u kvantovomu P Levi u 1990 mu 16 Teoriya GMO dlya strumu spryamovanogo perpendikulyarno sharam CPP geometriya angl current perpendicular to plane strum perpendikulyarno do ploshini vidoma yak teoriya Valeta Ferta bula opublikovana u 1993 roci 17 U toj zhe chas praktichnij interes predstavlyaye CPP geometriya 18 oskilki sensori na jogo osnovi vpershe zaproponovani R Rotmajyerom u 1994 roci demonstruyut bilshu chutlivist nizh sensori na osnovi CIP 19 Teoriya RedaguvatiOsnovni polozhennya Redaguvati Spin zalezhne rozsiyannya Redaguvati nbsp Gustina elektronnih staniv u magnitnih i nemagnitnih metalah 1 Struktura z troh nezalezhnih shariv dvoh feromagnitnih i odnogo nemagnitnogo strilki poznachayut napryam namagnichenosti 2 Rozsheplennya gustini elektronnih staniv dlya elektroniv z riznim napryamkom spinu vidpovidno kozhnomu sharu v strukturi strilki poznachayut napryamok spinu F Riven Fermi Primitka napryamok magnitnogo momentu protilezhnij do sumarnogo spinu na rivni FermiElektrichnij opir zrazka zalezhit vid bagatoh faktoriv sered yakih u magnitovporyadkovanih materialah suttyevu rol vidigraye rozsiyannya elektroniv na magnitnij pidgratci kristalu tobto sukupnosti kristalografichno ekvivalentnih atomiv z nenulovim atomnim magnitnim momentom yaki utvoryuyut vlasnu kristalichnu gratku Rozsiyannya zalezhit vid oriyentaciyi spinu elektrona po vidnoshennyu do magnitnih momentiv atomiv Dlya viznachenosti chasto pokladayut sho elektroni providnosti minimalno vzayemodiyut z atomami magnitnij moment yakih maye paralelnij yihnomu spinu napryamok i maksimalno u vipadku antiparalelnih napryamkiv Vzayemodiya takozh bude silnoyu u paramagnitnomu stani koli vsi magnitni momenti atomiv napryamleni haotichno bez viokremlenogo napryamku namagnichenosti 5 7 20 Dlya takih horoshih providnikiv yak zoloto chi mid riven Fermi znahoditsya vseredini sp zoni a d zona povnistyu zapovnena U feromagnetikah sposterigayetsya insha situaciya V nih zalezhnist vzayemodiyi elektroniv z atomami vid napryamku yih spiniv pov yazana iz zapovnenistyu zoni yaka vidpovidaye za magnitni vlastivosti 3d dlya takih metaliv yak zalizo nikel chi kobalt d zona feromagnetikiv ye rozsheplenoyu oskilki vona mistit riznu kilkist elektroniv zi spinami napryamlenimi vgoru i vniz napryamki ye umovnistyu abi vidrizniti dvi grupi elektroniv Ce ye prichinoyu riznici u gustini elektronnih staniv na rivni Fermi dlya spiniv napryamlenih u rizni storoni Tut kazhut pro elektroni z neosnovnim napryamkom spinu angl minority spin electrons dlya toyi chastini d zoni sho zapovnena menshe napriklad de spini napryamleni vniz i elektroni z osnovnim napryamkom dlya drugoyi yiyi chastini angl majority spin electrons yaka viyavlyayetsya zapovnenoyu povnistyu spini napryamleni vgoru Riven fermi dlya elektroniv elektroniv z osnovnim napryamkom spiniv znahoditsya vseredini sp zoni vnaslidok chogo yih ruh u feromagnetiku podibnij do ruhu elektroniv u nemagnitnomu metali Dlya elektroniv z neosnovnim napryamkom spiniv sp i d zoni viyavlyayutsya gibridizovanimi a riven Fermi lezhit vseredini d zoni Gibridizovana spd zona feromagnetikiv harakterizuyetsya visokoyu gustinoyu staniv sho proyavlyayetsya yak zmenshennya dovzhini vilnogo probigu l displaystyle lambda nbsp elektroniv z neosnovnim napryamkom spiniv u porivnyanni z osnovnim U nikeli legovanomu kobaltom vidnoshennya l l displaystyle lambda uparrow lambda downarrow nbsp dlya elektroniv z riznimi napryamkami spinu mozhe zbilshuvatisya do 20 abo zmenshuvatisya do 0 3 za leguvannya hromom 21 Zgidno z teoriyeyu Drude providnist proporcijna dovzhini vilnogo probigu 22 i znannya l l displaystyle lambda uparrow lambda downarrow nbsp dozvolyaye ociniti spivvidnoshennya providnostej dlya cih dvoh grup elektroniv Tipova dovzhina vilnogo probigu u tonkih metalevih plivkah lezhit v intervali vid kilkoh odinic do kilkoh desyatkiv nanometriv Elektron pam yataye napryamok spinu na tak zvanij dovzhini spinovoyi relaksaciyi yaku takozh nazivayut dovzhinoyu spinovoyi difuziyi yaka mozhe znachno perevishuvati dovzhinu vilnogo probigu Vona viznachaye efektivnist spin polyarizovanogo transportu elektroniv Koli sposterigayetsya zalezhnist elektrichnogo oporu vid napryamku spinu nosiya zaryadu to govoryat pro spin zalezhnij ruh elektroniv Spin zalezhne rozsiyannya u feromagnetikah vidbuvayetsya pri perehodah elektroniv providnosti mizh nerozsheplenoyu 4s i rozsheplenoyu 3d zonami 5 7 Isnuyut materiali dlya yakih slabshoyu ye vzayemodiya mizh elektronami i atomami chiyi spini i magnitni momenti antiparalelni Kombinaciyeyu oboh cih tipiv materialiv mozhna otrimati tak zvanij inversnij efekt GMO 7 23 Tomu koli konkretnij mehanizm vzayemodiyi ne principovij dlya zberezhennya zagalnosti pidhodu kazhut pro elektrichnu providnist dlya elektroniv z osnovnim i neosnovnim napryamkom spiniv yakim vidpovidayut bilsha i mensha gustina elektronnih staniv Viznachennya spivvidnoshennya mizh providnostyami abo pitomimi oporami dlya cih dvoh grup elektroniv ye dostatnim dlya pobudovi fenomenologichnoyi teoriyi 24 25 Elektronna zonna struktura livoruch i gustina staniv pravoruch na kozhnij shemi nbsp Mid nemagnitnij metal F riven Fermi Po vertikalnij osi energiya v eV Mid nemagnitnij metal F riven Fermi Po vertikalnij osi energiya v eV nbsp Kobalt osnovnij napryamok spiniv Kobalt osnovnij napryamok spiniv nbsp Kobalt neosnovnij napryamok spiniv Kobalt neosnovnij napryamok spiniv CIP i CPP geometriyi pidklyuchennya Redaguvati nbsp Shemi rozmishennya spinovih klapaniv u geometriyi CIP livoruch i CPP pravoruch u golivci zchituvacha Chervonim poznacheno providniki po yakim podayetsya strum do sensora zelenim i zhovtim feromagnitni ta nemagnitnij shari u sensori V prikladena riznicya potencialiv Magnitnu nadgratku mozhna pid yednati do elektrichnogo kola dvoma sposobami Za tak zvanoyi CIP angl current in plane strum u ploshini geometriyi elektrichnij strum rozpovsyudzhuyetsya vzdovzh shariv nadgratki a elektrodi rozmisheno na odnij storoni vsiyeyi strukturi Za CPP angl current perpendicular to plane strum perpendikulyarno do ploshini geometriyi strum rozpovsyudzhuyetsya perpendikulyarno sharam nadgratki a elektrodi rozmisheno po rizni yiyi storoni 7 CPP geometriya harakterizuyetsya bilshimi velichinami GMO bilsh nizh u dva razi u porivnyanni z CIP ale j skladnisha dlya tehnichnoyi realizaciyi 26 27 Prohodzhennya strumu kriz magnitnu nadgratku Redaguvati nbsp Spinovij klapan na osnovi GMO FNG i ANG strukturi FM feromagnitnij shar strilkami vkazano napryamok namagnichenosti NM nemagnitnij shar Elektroni z napryamkami spiniv vgoru po riznomu rozsiyuyutsya pri prohodzhenni klapanu vnaslidok chogo zminyuyetsya stupin yih rozsiyannya tobto elektrichnij opir i ekvivalentna shema oporu klapanu Harakteristiki magnitnoyi vporyadkovanosti vidriznyayutsya u nadgratkah z feromagnitnoyu FNG i antiferomagnitnoyu ANG vzayemodiyeyu mizh sharami V pershij napryamok namagnichenosti riznih feromagnitnih sharah za vidsutnosti prikladenogo polya odnakovi a u drugij protilezhni napryamki cherguyutsya Elektroni yaki rozpovsyudzhuyutsya kriz FNG z antiparalelnim napryamkom spinu po vidnoshennyu do namagnichenosti gratki majzhe ne rozsiyuvatimutsya a elektroni zi spivnapryamlenim do namagnichenosti shariv spinom budut rozsiyuvatisya Pri prohodzhenni ANG zaznavatimut rozsiyannya elektroni z bud yakim napryamkom spiniv akti rozsiyannya dlya kozhnogo okremo vibranogo elektrona matimut misce pri prohodzhenni sharu z namagnichenistyu spivnapryamlenoyu do jogo spinu Oskilki velichina oporu zrazka zbilshuyetsya zi zbilshennyam kilkosti aktiv rozsiyannya opir ANG bude vishim nizh opir FNG 5 7 Dlya pobudovi priladiv sho vikoristovuyut efekt GMO neobhidno mati mozhlivist dinamichno peremikati stan gratki mizh stanami z paralelnoyu chi antiparalelnoyu namagnichenistyu shariv U pershomu nablizhenni gustina energiyi vzayemodiyi dvoh feromagnitnih shariv yaki rozdileni nemagnitnim prosharkom proporcijna skalyarnomu dobutku yihnih namagnichenostej w J M 1 M 2 displaystyle w J mathbf M 1 cdot mathbf M 2 nbsp Zalezhnist koeficiyenta J displaystyle J nbsp vid tovshini nemagnitnogo sharu d s displaystyle d s nbsp oscilyuye Tomu J displaystyle J nbsp mozhe zminyuvatisya yak za velichinoyu tak i za znakom Yaksho pidibrati d s displaystyle d s nbsp takim chinom sho osnovnim bude antiparalelnij stan to peremikannya nadgratki z antiparalelnogo stanu velikij opir u paralelnij nizkij opir bude vidbuvatis pid diyeyu zovnishnogo polya Povnij opir strukturi mozhna predstaviti u viglyadi R R 0 D R sin 2 8 2 displaystyle R R 0 Delta R sin 2 frac theta 2 nbsp de R 0 displaystyle R 0 nbsp opir FNG D R displaystyle Delta R nbsp inkrement GMO 8 p p displaystyle theta in pi pi nbsp kut mizh namagnichenostyami susidnih shariv 26 Matematichnij opis Redaguvati Dlya matematichnoyi formalizaciyi yavisha vvodyatsya dva tak zvanih spinovih kanali elektroprovidnosti yaki vidpovidayut providnosti elektroniv dlya yakih opir vidpovidno minimalnij ta maksimalnij Spivvidnoshennya mizh nimi chasto viznachayetsya u terminah koeficiyenta spinovoyi anizotropiyi b displaystyle beta nbsp yakij mozhna vvesti viznachennyam minimalnogo i maksimalnogo pitomih elektrichnih oporiv r F displaystyle rho F pm nbsp dlya spin polyarizovanogo strumu u viglyadi r F 2 r F 1 b displaystyle rho F pm frac 2 rho F 1 pm beta nbsp de r F displaystyle rho F nbsp serednij pitomij opir feromagnetika 28 Rezistorna model dlya CIP i CPP struktur Redaguvati V umovah koli rozsiyannya nosiyiv strumu na mezhi mizh feromagnitnim i nemagnitnim metalami male a napryamok spiniv elektroniv zberigayetsya dosit dovgo zruchno rozglyadati model v yakij elektrichnij opir zrazka viznachayetsya oporami magnitnih i nemagnitnih shariv okremo Nayavnist dvoh kanaliv providnosti dlya elektroniv z riznim napryamkom spinu po vidnoshennyu do namagnichenosti u sharah strukturi svidchit sho ekvivalentna shema GMO strukturi bude skladatis z dvoh paralelno spoluchenih rezistoriv yaki vidpovidayut kozhnomu z kanaliv U takomu vipadku viraz dlya magnetooporu nabude viglyadu d H D R R R R R r F r F 2 2 r F x r N 2 r F x r N displaystyle delta H frac Delta R R frac R uparrow downarrow R uparrow uparrow R uparrow uparrow frac rho F rho F 2 2 rho F chi rho N 2 rho F chi rho N nbsp de indeksi v R poznachayut spivnapryamlenu i protinapryamlenu oriyentaciyi namagnichenosti v sharah x b a displaystyle chi b a nbsp vidnoshennya tovshin nemagnitnogo i magnitnogo metaliv r N displaystyle rho N nbsp pitomij opir nemagnitnogo metalu Cej viraz mozhna zastosuvati dlya CIP i CPP struktur Za vikonannya umovi x r N r F displaystyle chi rho N ll rho F pm nbsp cyu zalezhnist mozhna perepisati u prostishomu viglyadi cherez koeficiyent spinovoyi asimetriyi d H b 2 1 b 2 displaystyle delta H frac beta 2 1 beta 2 nbsp Podibnij prilad chij opir vidriznyayetsya dlya elektroniv z riznimi napryamkami spinu prijnyato nazivati spinovim klapanom Kazhut sho vin vidkritij yaksho namagnichenosti v jogo sharah oriyentovani paralelno i zakritij u protilezhnomu vipadku 29 Vivid formul magnetooporu Nehaj nadgratka skladayetsya z dvoh magnitnih shariv tovshinoyu a i nemagnitnogo prosharku tovshinoyu b mizh nimi Yaksho vvazhati sho pri prohodzhenni takoyi strukturi chas perebuvannya elektrona v kozhnomu z shariv proporcijnij jogo tovshini to pitomij opir strukturi mozhna zapisati u viglyadi r a r F 1 r F 2 b r N 2 a b displaystyle rho frac a rho F1 rho F2 b rho N 2a b nbsp de indeksi F1 i F2 poznachayut pershij i drugij magnitni shari vidpovidno a N nemagnitnij shar Yaksho znehtuvati rozsiyannyam elektroniv pri prohodzhenni granic mizh sharami i spinovoyu relaksaciyeyu to dlya zrazka dovzhinoyu L i plosheyu peretinu S opori dlya paralelnoyi i antiparalelnoyi konfiguracij namagnichenosti budut mati viglyad R C I P L 2 a b S 1 2 a r F b r N 1 2 a r F b r N 1 displaystyle R uparrow uparrow CIP frac L 2a b S left frac 1 2a rho F b rho N frac 1 2a rho F b rho N right 1 nbsp R C I P L 2 2 a b S a r F r F b r N displaystyle R uparrow downarrow CIP frac L 2 2a b S left a rho F rho F b rho N right nbsp Tut indeksi v integralnih oporiv R poznachayut spivnapryamlenist namagnichenosti v sharah strukturi vrahovano sho ekvivalentna shema strukturi viglyadaye yak paralelne z yednannya kanaliv dlya elektroniv z protilezhnimi napryamkami spiniv Todi magnetoopir mozhna zapisati yak D R C I P R C I P R C I P R C I P R C I P r F r F 2 2 r F x r N 2 r F x r N displaystyle frac Delta R CIP R CIP frac R uparrow downarrow CIP R uparrow uparrow CIP R uparrow uparrow CIP frac rho F rho F 2 2 rho F chi rho N 2 rho F chi rho N nbsp gde x b a displaystyle chi b a nbsp 30 Yak i dlya CIP ekvivalentna shema CPP strukturi skladayetsya z paralelno z yednanih kanaliv oporiv dlya elektroniv z protilezhnimi napryamkami spiniv Vidminnist vid poperednogo vipadku polyagaye lishe u koeficiyenti proporcijnosti mizh pitomim i integralnim oporami oskilki elektron teper maye podolati ne pozdovzhnij rozmir L a tovshini shariv a i b Yaksho poznachiti cherez S ploshu strukturi to R C P P 1 S 1 2 a r F b r N 1 2 a r F b r N 1 displaystyle R uparrow uparrow CPP frac 1 S left frac 1 2a rho F b rho N frac 1 2a rho F b rho N right 1 nbsp R C P P a r F r F b r N S displaystyle R uparrow downarrow CPP frac a rho F rho F b rho N S nbsp Ce oznachaye sho viraz dlya magnetooporu ne zminitsya D R C P P R C P P R C P P R C P P R C P P r F r F 2 2 r F x r N 2 r F x r N displaystyle frac Delta R CPP R CPP frac R uparrow downarrow CPP R uparrow uparrow CPP R uparrow uparrow CPP frac rho F rho F 2 2 rho F chi rho N 2 rho F chi rho N nbsp 31 Model Valeta Ferta Redaguvati U 1993 roci Tyeri Valetom angl Thierry Valet i Alberom Fertom bulo opublikovano model gigantskogo magnetooporu dlya CPP geometriyi pobudovanu na osnovi kinetichnih rivnyan Bolcmana Sut teoriyi polyagaye u rozglyadi rozsheplennya himichnogo potencialu na dvi funkciyi vseredini magnitnogo sharu yaki vidpovidayut elektronam zi spinami paralelnimi ta antiparalelnimi namagnichenosti v nomu Yaksho vvazhati sho tovshina nemagnitnogo sharu dosit mala to v zovnishnomu elektrichnomu poli E0 popravki do elektrohimichnogo potencialu i polya vseredini zrazka matimut viglyad D m b 1 b 2 e E 0 l s e z l s displaystyle Delta mu frac beta 1 beta 2 eE 0 l s e z l s nbsp D E b 2 1 b 2 e E 0 l s e z l s displaystyle Delta E frac beta 2 1 beta 2 eE 0 l s e z l s nbsp de ls serednya dovzhina spinovoyi relaksaciyi a koordinata z displaystyle z nbsp vidrahovuyetsya vid mezhi mizh magnitnim i nemagnitnim sharami z lt 0 displaystyle z lt 0 nbsp vidpovidaye feromagnetik 17 Zvidsi viplivaye sho na mezhi feromagnetika budut nakopichuvatisya ti elektroni dlya yakih himichnij potencial bilshij 32 sho mozhna predstaviti u viglyadi potencialu spinovoyi akumulyaciyi VAS abo tak zvanogo interfejsnogo oporu sho vidpovidaye mezhi interfejsu feromagnetik nemagnitnij material R i b m m 2 e j b 2 l s N r N 1 1 b 2 l s N r N l s F r F displaystyle R i frac beta mu uparrow downarrow mu uparrow uparrow 2ej frac beta 2 l sN rho N 1 1 beta 2 l sN rho N l sF rho F nbsp de j gustina strumu v zrazku lsN i lsF dovzhini spinovoyi relaksaciyi u nemagnitnomu i magnitnomu materialah vidpovidno 33 Metodi otrimannya RedaguvatiMateriali i eksperimentalni dani Redaguvati Mozhna pidibrati dosit bagato kombinacij materialiv sho budut demonstruvati efekt gigantskogo magnetooporu 34 Chasto vikoristovuyutsya i shiroko doslidzhuvalis nastupni FeCr 13 Co10Cu90 d H 40 displaystyle delta H 40 nbsp pri kimnatnij temperaturi 35 110 Co95Fe5 Cu d H 110 displaystyle delta H 110 nbsp pri kimnatnij temperaturi 34 Velichina magnetooporu zalezhit vid bagatoh parametriv takih yak geometriya priladu CIP abo CPP temperatura zrazka tovshina shariv feromagnitnih i neferomagnitnih materialiv Pri temperaturi 4 2 K i fiksovanij tovshini sharu kobaltu v 1 5 nm zmina tovshini sharu midi d C u displaystyle d Cu nbsp vid 1 do 10 nm prizvodila do rizkogo zmenshennya d H displaystyle delta H nbsp vid 80 do 10 u CIP geometriyi U toj zhe chas z CPP geometriyeyu maksimalnij efekt na rivni 125 dosyagavsya pri dCu 2 5 nm Zbilshennya d C u displaystyle d Cu nbsp do 10 nm prizvodilo do zmenshennya d H displaystyle delta H nbsp do 60 Zalezhnist d H d C u displaystyle delta H d Cu nbsp mala oscilyuyuchij harakter 36 Nadgratka z shariv kobaltu i midi tovshinami 1 2 ta 1 1 nm pri zmini temperaturi vid blizkoyi do absolyutnogo nulya do 300 K demonstruvala zmenshennya velichini efektu vid 40 do 20 v CIP geometriyi j vid 100 do 55 u CPP geometriyi 37 Isnuyut doslidzhennya spinovih klapaniv z nemetalevimi nemagnitnimi prosharkami A same dlya organichnih prosharkiv pri 11 K fiksuvavsya gigantskij negativnij magnetoopir do 40 38 Spinovi klapani na grafeni riznoyi konstrukciyi demonstruvali GMO na rivni 12 pri temperaturi 7 K i 10 pri temperaturi 300 K Ale teoretichni ocinki dozvolyayut vvazhati verhnyu mezhu efektu do 109 39 Do posilennya efektu prizvodit vikoristannya spinovih filtriv sho polyarizuyut spini elektroniv pid chas prohodzhennya elektrichnogo strumu Taki filtri vigotovlyayutsya z metaliv tipu kobaltu Dlya filtru tovshinoyu t displaystyle t nbsp z dovzhinoyu vilnogo probigu elektroniv l displaystyle lambda nbsp sposterigalasya zmina providnosti D G displaystyle Delta G nbsp yaku mozhna zapisati yak D G D G S V D G f 1 e b t l displaystyle Delta G Delta G SV Delta G f 1 e beta t lambda nbsp de D G S V displaystyle Delta G SV nbsp zmina providnosti spinovogo klapanu bez filtra D G f displaystyle Delta G f nbsp maksimalne zbilshennya providnosti za vikoristannya filtra b displaystyle beta nbsp parametr materialu filtra 40 Tipi GMO Redaguvati Klasifikaciyu chasto provodyat po tipam pristroyiv u yakih proyavlyaetsya efekt GMO 41 GMO v plivkah Redaguvati Antiferomagnitni nadgratki Redaguvati Efekt GMO u plivkah vpershe sposterigavsya Fertom i Gryunbergom pri doslidzhenni nadgratok sho skladalis z feromagnitnih i nemagnitnih shariv Tovshina nemagnitnogo sharu pidbirayetsya taka abi vzayemodiya mizh sharami bula antiferomagnitnoyu i yak rezultat osnovnim stanom bula antiparalelna oriyentaciya namagnichenostej u susidnih sharah Todi pri zovnishnij diyi napriklad magnitnim polem oriyentaciya vektoriv namagnichenosti v riznih sharah mozhe buti zminena na paralelnu Ce suprovodzhuyetsya znachnoyu zminoyu elektrichnogo oporu strukturi 13 Vzayemodiya magnitnih shariv u podibnih strukturah vidbuvayetsya za dopomogoyu tak zvanogo antiferomagnitnogo sparyuvannya Jogo naslidkom ye oscilyaciyi koeficiyenta GMO v zalezhnosti vid tovshini nemagnitnogo prosharku U pershih sensorah magnitnogo polya sho vikoristovuvali antiferomagnitni nadgratki pole nasichennya bulo duzhe velikim do desyatkiv tisyach ersted vnaslidok silnoyi antiferomagnitnoyi vzayemodiyi mizh plivkami hromu i zaliza kobaltu a takozh silnimi polyami anizotropiyi v nih Tomu chutlivist podibnih pristroyiv bula duzhe nizkoyu Piznishe u nih pochali zastosovuvati permaloj u magnitnih sharah i sriblo u nemagnitnih sharah sho znizilo pole nasichennya do desyatkiv ersted 42 Spinovi klapani na obminnomu zmishenni Redaguvati Najvdalishoyu viyavilasya konfiguraciya tih spinovih klapaniv u yakih efekt GMO vinikaye vnaslidok obminnogo zmishennya Voni skladayutsya z sensornogo sharu prosharku fiksovanogo sharu i antiferomagnitno spryamovanogo fiksuyuchogo sharu Ostannij z nih vikoristovuyetsya dlya fiksaciyi napryamku namagnichenosti u fiksovanomu shari Usi shari krim fiksovanogo dosit tonki dlya zabezpechennya nizkogo oporu strukturi Reakciya na zovnishnye magnitne pole polyagaye v zmini napryamku namagnichenosti sensornogo sharu vidnosno fiksovanogo 43 Osnovnoyu vidminnistyu takih spinovih klapaniv vid inshih bagatosharovih GMO pristroyiv ye monotonna zalezhnist amplitudi efektu vid tovshini dN prosharku mizh magnitnimi sharami sho mozhna prestaviti u viglyadi fenomenologinchoyi zalezhnosti d H d N d H 0 exp d N l N 1 d N d 0 displaystyle delta H d N delta H0 frac exp left d N lambda N right 1 d N d 0 nbsp de d H 0 displaystyle delta H0 nbsp deyakij koeficiyent normuvannya GMO l N displaystyle lambda N nbsp dovzhina vilnogo probigu elektroniv u nemagnitnomu shari d0 efektivna tovshina sho vrahovuye shuntuvannya inshih elementiv strukturi 41 44 Mozhna privesti podibnij viraz dlya zalezhnosti vid tovshini feromagnitnogo sharu d H d F d H 1 1 exp d F l F 1 d F d 0 displaystyle delta H d F delta H1 frac 1 exp left d F lambda F right 1 d F d 0 nbsp Sens parametniv formuli toj zhe sho i u poperednij zalezhnosti ale teper dlya feromagnetika sho vikoristovuyetsya 34 Bagatosharovi strukturi bez zv yazku psevdospinovi klapani Redaguvati Efekt GMO takozh mozhe sposterigatisya j za vidsutnosti antiferomagnitnogo sparyuvannya U takomu vipadku magnetoopir vinikaye cherez riznici u koercitivnih silah napriklad mensha u permaloyu i bilsha u kobaltu U bagatosharovih strukturah tipu permaloj mid kobalt mid zovnishnye magnitne pole prizvodit do peremikannya mizh riznimi napryamkami namagnichenosti nasichennya v sharah paralelnya pri bilshih polyah i antiparalelna u malih Podibni sistemi harakterizuyutsya menshim polem nasichennya i bilshim d H displaystyle delta H nbsp nizh nadgratki z antiferomagnitnim zv yazkom 43 Takozh podibnij efekt sposterigayetsya u strukturah kobaltu i midi Faktichno isnuvannya takih struktur oznachaye sho dlya sposterezhennya GMO neobhidnoyu umovoyu ye ne zv yazok mizh sharami a deyakij rozpodil magnitnogo momentu v strukturi kotrim mozhna keruvati zovnishnim polem 45 Inversnij efekt GMO Redaguvati U vipadku inversnogo efektu minimum oporu sposterigayetsya pri antiparalelnij oriyentaciyi namagnichenosti u sharah nadgratki Inversnij efekt GMO sposterigayetsya koli magnitni shari skladayutsya z riznih materialiv napriklad NiCr Cu Co Cu Yaksho zapisati pitomij opir sharu dlya elektroniv z protilezhnimi napryamkamii spiniv u viglyadi r 2 r F 1 b displaystyle rho uparrow downarrow frac 2 rho F 1 pm beta nbsp to dlya nikel hromovogo i kobaltovogo shariv znaki koeficiyentu spinovoyi asimetriyi b displaystyle beta nbsp budut rizni Za dostatnoyi tovshini sharu NiCr jogo vnesok perevishit vnesok kobaltovogo sharu sho j prizvede do sposterezhennya inversnogo efektu 23 Tak yak inversiya efektu zalezhit lishe vid znaku dobutku koeficiyentiv b displaystyle beta nbsp u susidniyi feromagnitnih sharah a ne vid yih znakiv okremo abi abstraguvatisya vid konkretnogo mehanizmu vzayemodiyi spiniv elektroniv z magnitnimi momentami atomiv inodi avtorami ogovoryuyetsya znak b displaystyle beta nbsp sho vrahovuyetsya u posliduyuchih rozrahunkah 37 Vidomo sho analogichni nikel hromovomu sharu vlastivosti takozh bude demonstruvati nikel legovanij vanadiyem u toj chas yak leguvannya zalizom kobaltom margancem zolotom chi middyu ne prizvede do sposterezhennya inversnogo efektu u rozglyanutij vishe strukturi 46 GMO u zernistih strukturah Redaguvati GMO u zernistih splavah do desyatkiv nanometriv feromagnitnih i nemagnitnih metaliv bulo viyavleno u 1992 roci j piznishe poyasneno spin zalezhnim rozsiyannyam nosiyiv strumu na poverhni ta v ob yemi granul Granuli utvoryuyut feromagnitni klasteri zazvichaj diametrom blizko 10 nm yaki otocheni nemagnitnim metalom sho mozhe buti opisano yak efektivna plivkova nadgratka Neobhidnoyu umovoyu dlya materialiv takih splaviv ye pogana vzayemna rozchinnist komponent napriklad kobalt i mid Na vlastivosti takih struktur silno vplivaye chas i temperatura vidzhigu mozhna otrimati vid yemnij GMO kotrij zbilshuvatimetsya pri zbilshenni temperaturi 35 47 Vikoristannya RedaguvatiSensori na spinovih klapanah Redaguvati Zagalna shema Redaguvati nbsp Kopiya GMO sensora rozroblenogo Peterom GryunbergomOdnoyu z osnovnih sfer zastosuvannya GMO ye vimiryuvalna tehnika na bazi efektu bulo stvoreno datchiki magnitnogo polya riznogo priznachennya u zchituyuchih golivkah nakopichuvachiv na zhorstkih magnitnih diskah de vidbuvayetsya viznachennya napryamku magnitnogo polya u komirci sho zberigaye bit informaciyi 26 biosensorah 34 zasobah detekciyi ta vimiryuvannya kolivan u MEMS 34 ta in Tipovij datchik sho vikoristovuye efekt GMO skladayetsya z semi shariv Kremniyeva pidkladka Zv yazuvalnij shar Sensornij nefiksovanij zminnij shar Nemagnitnij shar Fiksuyuchij piningovij shar Antiferomagnitnij fiksovanij shar Zahisnij shar Yak zv yazuvalnij i zahisnij shari chasto vikoristovuyut tantal a nemagnitnim sharom sluguye mid U sensornomu shari namagnichenist mozhe vilno oriyentuvatisya zovnishnim magnitnim polem Vin vigotovlyayetsya z poyednannya NiFe chi kobaltovih splaviv Antiferomagnitnij shar vigotovlyayetsya z plivok FeMn chi NiMn Napryamok namagnichenosti u nomu viznachayetsya fiksuyuchim sharom z magnitotverdogo materialu napriklad kobaltu Takij sensor harakterizuyetsya asimetrichnoyu petleyu gisterezisu sho pov yazano z nayavnistyu magnitotverdogo sharu yakij fiksuye napryamok namagnichenosti u robochomu diapazoni poliv 48 49 U spinovih klapanah takozh sposterigayetsya anizotropnij magnetoopir sho prizvodit do asimetriyi krivoyi chutlivosti Jogo vrahuvannya daye znachennya magnetooporu sho duzhe dobre zbigayetsya zi sposterezhuvanim na praktici 50 Realizaciya u zhorstkih diskah Redaguvati Dokladnishe Zhorstkij diskU zhorstkih diskah HDD informaciya koduyetsya za dopomogoyu magnitnih domeniv koli odnomu napryamku namagnichenosti u nih stavitsya u vidpovidnist logichna odinicya a protilezhnomu logichnij nul Rozriznyayut pozdovzhnij i perpendikulyarnij metodi zapisu U pozdovzhnomu metodi domeni roztashovuyutsya u ploshini plastini tobto napryamok v nih paralelnij poverhni Mizh domenami zavzhdi formuyetsya perehidna oblast domenna stinka v oblasti kotroyi na poverhnyu vihodit magnitne pole Yaksho domenna stinka utvorilas na mezhi dvoh pivnichnih polyusiv domeniv to pole napryamleno nazovni a yaksho yiyi utvorili pivdenni polyusi to vseredinu Abi zchitati napryamok magnitnogo polya nad domennoyu stinkoyu u feromagnitnomu shari sensora fiksuyetsya napryamok namagnichenosti perpendikulyarno ploshini plastini disku a v sensornomu shari paralelno do neyi Zmina napryamku zovnishnogo magnitnogo polya vidhilyaye namagnichenist u sensornomu shari vid rivnovazhnogo polozhennya vgoru chi vniz Koli napryamok vidhilennya zbigayetsya z napryamkom u fiksovanomu shari to elektrichnij opir sensora zmenshuyetsya i navpaki za riznih napryamkiv detektuyetsya zbilshennya oporu Takim chinom viznachayetsya vzayemna oriyentaciya domeniv nad yakimi projshla zchituvalna golivka 51 V nash chas shiroko zastosovuyetsya vertikalne rozmishennya domeniv sho dozvolyaye suttyevo zbilshiti gustinu rozmishennya bitiv na poverhni plastini 52 Pri comu na poverhnyu vihodit pole sho utvoryuyetsya samim domenom Magnitna operativna pam yat Redaguvati Dokladnishe MRAM nbsp Vikoristannya spinovogo klapana v MRAM 1 Spinovij klapan yak komirka pam yati strilki poznachayut nayavnist feromagnitnih shariv 2 Liniya ryadka 3 Liniya stovpchika Elipsi zi strilkami poznachayut silovi liniyi magnitnogo polya navkolo linij ryadka i stovpchika pid chas prohodzhennya elektrichnogo strumu v nih Komirka magnitorezistivnoyi operativnoyi pam yati angl Magnetic Random Access Memory MRAM skladayetsya zi strukturi podibnoyi sensoru na spinovomu klapani Znachennya bitu sho zberigayetsya mozhe koduvatisya napryamkom namagnichenosti u sensornomu shari yakij v danomu vipadku vistupaye nosiyem informaciyi Zchituvannya vidbuvayetsya shlyahom vimiryuvannya oporu strukturi Perevagi podibnoyi tehnologiyi polyagayut v nezalezhnosti vid dzherel zhivlennya K 2 nizkomu energospozhivanni ta visokij shvidkodiyi 26 U tipovomu bloci pam yati na osnovi magnetorezistivnogo efektu sho zberigaye odin bit informaciyi GMO struktura formatu CIP rozmishuyetsya mizh dvoma providnikami yaki oriyentovani perpendikulyarno po vidnoshennyu odin do odnogo Ci providniki nazivayut liniyami ryadkiv i stovpciv Impulsi elektrichnogo strumu yaki prohodyat kriz liniyi generuyut vihrove magnitne pole kotre diye na GMO strukturu Konturi silovih linij polya blizki do elipsu za svoyeyu formoyu a napryamok polya za chi proti godinnikovoyi strilki viznachayetsya napryamkom strumu po liniyi Takim chinom napryamko polya sho stvoryuyetsya liniyeyu stovpchika napryamleno praktichno paralelno magnitnim momentam i vono ne mozhe yih rozvernuti Liniya ryadka stvoryuye pole perpendikulyarne nim i nezalezhno vid velichini polya mozhe povernuti namagnichenist lishe na 90 Pri odnochasnomu prohodzhenni impulsiv po liniyam ryadkiv i stopchikiv sumarnij magnitne pole u misci roztashuvannya GMO strukturi bude napryamleno pid gostrim kutom po vidnoshennyu do odnih momentiv i pid tupim po vidnoshennyu do inshih Yaksho velichina polya perevishit deyake kritichne znachennya to ostanni zminyat svij napryamok Vikoristovuyutsya rizni shemi zberezhennya i zchituvannya informaciyi z opisanoyi komirki V odnij z nih informaciya zberigayetsya u ruhomomu shari strukturi Todi operaciya chitannya viznachaye chi zminivsya opir strukturi pri prikladanni magnitnogo polya Pri comu zchitanij bit stirayetsya i jogo neobhidno zapisati u komirku znovu V inshij shemi informaciyu zberigaye fiksovanij shar sho potrebuye bilshih strumiv dlya zapisu v porivnyanni zi strumami zchituvannya 53 Na sogodni u vipadku MRAM gigantskij magnetoopir postupivsya miscem tunelnomu 54 V podibnih strukturah takozh neobhidni ventilni elementi sho poperedzhuyut blukayuchi strumi mizh komirkami pam yati Takim ventilnim elementom mozhe buti MON tranzistor do stoku yakogo pidklyuchayetsya GMO struktura do vitoku zazemlennya a do zatvora odna z linij sho sluguye dlya zchituvannya 55 Inshi zastosuvannya Redaguvati Magnetorezistivni izolyatori dlya bezkontaktnoyi peredachi signalu mizh dvoma galvanichno izolovanimi chastinami elektrichnih shem vpershe buli prodemonstrovani u 1997 roci yak alternativa optoparam zavdyaki krashij integrovnosti Mist Vitstona z chotiroh odnakovih GMO priladiv nechutlivij do odnoridnogo magnitnogo polya j reaguye lishe todi koli napryamki poliv antiparalelni u susidnih nizhkah mosta Podibni priladi buli prodemonstrovani u 2003 roci j mozhut vikoristovuvatis yak vipryamlyachi strumu z linijnoyu AChH Uzagalnena do chotiroh nezalezhnih strumiv shema podibnogo mosta transpinor angl transpinnor bulo zroblena Siongte Bai u 2002 roci j mozhe vikoristovuvatis yak logichnij ventil 34 56 Div takozh RedaguvatiMagnetoopirPrimitki RedaguvatiKomentari Redaguvati Shema ne vidobrazhaye nayavnist magnitnogo gisterezisu oskilki forma jogo petli v nadgratci zalezhit vid tovshini nemagnitnogo sharu V doslidah Ferta dobre virazhenij gisterezis iz polem nasichennya blizko 4 kGs i zalishkovoyu namagnichenistyu yaka stanovila blizko 60 vid namagnichenosti nasichennya sposterigavsya za tovshini nemagnitnogo prosharku rivnoyi d C u 1 8 displaystyle d Cu 1 8 nbsp nm Ale pri zmenshenni d C u displaystyle d Cu nbsp do znachennya 0 9 nm yake vidpovidaye najbilshomu dosyagnutomu GMO petlya redukuvalasya do vuzkoyi vityagnutoyi figuri z polem nasichennya 20 kGs i maloyu zalishkovoyu namagnichenistyu div Baibich M N et al 1988 Giant Magnetoresistance of 001 Fe 001 Cr Magnetic Superlattices PRL 61 21 2472 2475 doi 10 1103 PhysRevLett 61 2472 Zberigannya stanu komirki sho vidpovidaye odnomu bitu informaciyi pri vidklyuchennya zhivlennya ye mozhlivim zavdyaki isnuvannyu potencialnogo bar yeru kotrij neobhidno podolati dlya pereoriyentaciyi napryamku namagnichenosti u vilnomu sensornomu shari pri perehodi mizh paralelnimi i antiparalelnimi stanami strukturi div Denny D Tang Yuan Jen Lee Magnetic Memory Fundamentals and Technology Cambridge University Press 2010 P 103 ISBN 978 0521449649 Dzherela Redaguvati a b E L Nagaev Manganity lantana i drugie magnitnye provodniki s gigantskim magnitosoprotivleniem Uspehi fizicheskih nauk 1996 T 166 vip 8 S 833 858 DOI 10 3367 UFNr 0166 199608b 0833 Colossal Magnetoresistance Charge Ordering and Related Properties of Manganese Oxides Ed by C N R Rao and B Raveau World Scientfic Publishing Co 1998 P 2 ISBN 978 981 02 3276 4 Hirota E Sakakima H Inomata K Giant Magneto Resistance Devices Springer 2002 P 30 ISBN 978 3 540 41819 1 Ya M Mukovskij Poluchenie i svojstva materialov s kolossalnym magnetosoprotivleniem Ros him zh 2001 T XLV vip 5 6 S 32 41 a b v g Nikitin S A Gigantskoe magnitosoprotivlenie Sorosovskij obozrevatelnyj zhurnal 2004 T 8 vip 2 S 92 98 Alfred Brian Pippard Magnetoresistance in Metals Cambridge University Press 2009 Vol 2 P 8 Cambridge Studies in Low Temperature Physics ISBN 9780521118804 a b v g d e 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Cr Magnetic Superlattices Physical Review Letters 61 21 2472 2475 doi 10 1103 PhysRevLett 61 2472 Tsymbal E Y and Pettifor D G Solid state physics Ed by Henry Ehrenreich Frederick Seitz David Turnbull Frans Spaepen Academic Press 2001 Vol 56 P 120 Solid State Physics Advances in Research and Applications ISBN 9780126077568 R E Camley and J Barnas 1989 Theory of giant magnetoresistance effects in magnetic layered structures with antiferromagnetic coupling Phys Rev Lett 63 6 664 667 doi 10 1103 PhysRevLett 63 664 Peter M Levy Shufeng Zhang Albert Fert 1990 Electrical conductivity of magnetic multilayered structures Phys Rev Lett 65 13 1643 1646 doi 10 1103 PhysRevLett 65 1643 a b T Valet A Fert 1993 Theory of the perpendicular magnetoresistance in magnetic multilayers Physical Review B 48 10 7099 7113 doi 10 1103 PhysRevB 48 7099 Nagasaka K et al 30 chervnya 2005 CPP GMR Technology for Future High Density Magnetic Recording anglijskoyu Fujitsu Arhiv originalu za 10 serpnya 2011 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