Chirality-induced magnetoresistance in hybrid organic-inorganic perovskite semiconductors

Fuente: arXiv
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Hauptverfasser: Haque, Md Azimul, Theiler, Pius Markus, Leahy, Ian A., Harvey, Steven P., Tan, Jeiwan, Hautzinger, Matthew P, Taddei, Margherita, McConnell, Aeron, Greider, Andrew, Comstock, Andrew H., Dong, Yifan, Alberi, Kirstin, Ping, Yuan, Sercel, Peter C., Luther, Joseph M., Sun, Dali, Beard, Matthew C.
Format: Preprint
Veröffentlicht: 2025
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author Haque, Md Azimul
Theiler, Pius Markus
Leahy, Ian A.
Harvey, Steven P.
Tan, Jeiwan
Hautzinger, Matthew P
Taddei, Margherita
McConnell, Aeron
Greider, Andrew
Comstock, Andrew H.
Dong, Yifan
Alberi, Kirstin
Ping, Yuan
Sercel, Peter C.
Luther, Joseph M.
Sun, Dali
Beard, Matthew C.
author_facet Haque, Md Azimul
Theiler, Pius Markus
Leahy, Ian A.
Harvey, Steven P.
Tan, Jeiwan
Hautzinger, Matthew P
Taddei, Margherita
McConnell, Aeron
Greider, Andrew
Comstock, Andrew H.
Dong, Yifan
Alberi, Kirstin
Ping, Yuan
Sercel, Peter C.
Luther, Joseph M.
Sun, Dali
Beard, Matthew C.
contents The combination of semiconducting properties and synthetically tunable chirality in chiral metal halide semiconductors (CMHS) offer a compelling platform for room temperature control over electronic spin properties, leveraging effects such as chirality-induced spin selectivity (CISS) for the development of new opto-spintronic functionalities. We report room-temperature CISS-induced magnetoresistance (CISS-MR) exceeding 100% for spin valves in a configuration consisting of a ferromagnet (FM), tunneling barrier, and CMHS. The high CISS-MR is attributed to interfacial spin-selective tunneling barrier induced by the chirality, which can produce current dissymmetry factors that surpass the limit imposed by the Jullière model governed by the intrinsic spin polarization of the adjacent FM contact. The CISS-MR exhibits a strong dependence on the CMHS composition, revealing a structure-property relationship between CISS and structural chirality. The observed exceptionally large tunneling MR response differentiates from a subtle anisotropic MR arising from the proximity effect at the FM/CMHS interface in the absence of a tunneling barrier. Our study provides insights into charge-to-spin interconversion in chiral semiconductors, offering materials design principles to control and enhance CISS response and utilize it in functional platforms.
format Preprint
id arxiv_https___arxiv_org_abs_2512_08046
institution arXiv
publishDate 2025
record_format arxiv
spellingShingle Chirality-induced magnetoresistance in hybrid organic-inorganic perovskite semiconductors
Haque, Md Azimul
Theiler, Pius Markus
Leahy, Ian A.
Harvey, Steven P.
Tan, Jeiwan
Hautzinger, Matthew P
Taddei, Margherita
McConnell, Aeron
Greider, Andrew
Comstock, Andrew H.
Dong, Yifan
Alberi, Kirstin
Ping, Yuan
Sercel, Peter C.
Luther, Joseph M.
Sun, Dali
Beard, Matthew C.
Materials Science
The combination of semiconducting properties and synthetically tunable chirality in chiral metal halide semiconductors (CMHS) offer a compelling platform for room temperature control over electronic spin properties, leveraging effects such as chirality-induced spin selectivity (CISS) for the development of new opto-spintronic functionalities. We report room-temperature CISS-induced magnetoresistance (CISS-MR) exceeding 100% for spin valves in a configuration consisting of a ferromagnet (FM), tunneling barrier, and CMHS. The high CISS-MR is attributed to interfacial spin-selective tunneling barrier induced by the chirality, which can produce current dissymmetry factors that surpass the limit imposed by the Jullière model governed by the intrinsic spin polarization of the adjacent FM contact. The CISS-MR exhibits a strong dependence on the CMHS composition, revealing a structure-property relationship between CISS and structural chirality. The observed exceptionally large tunneling MR response differentiates from a subtle anisotropic MR arising from the proximity effect at the FM/CMHS interface in the absence of a tunneling barrier. Our study provides insights into charge-to-spin interconversion in chiral semiconductors, offering materials design principles to control and enhance CISS response and utilize it in functional platforms.
title Chirality-induced magnetoresistance in hybrid organic-inorganic perovskite semiconductors
topic Materials Science
url https://arxiv.org/abs/2512.08046