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Main Authors: Wu, Fengxia, Wang, Ying, Zhao, Yufei, Yang, Zhenyu, Tian, Yu, Xie, Zuoti, Niu, Wenxin, Yan, Binghai, Guo, Cunlan
Format: Preprint
Published: 2024
Subjects:
Online Access:https://arxiv.org/abs/2408.03501
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author Wu, Fengxia
Wang, Ying
Zhao, Yufei
Yang, Zhenyu
Tian, Yu
Xie, Zuoti
Niu, Wenxin
Yan, Binghai
Guo, Cunlan
author_facet Wu, Fengxia
Wang, Ying
Zhao, Yufei
Yang, Zhenyu
Tian, Yu
Xie, Zuoti
Niu, Wenxin
Yan, Binghai
Guo, Cunlan
contents Chiral nanomaterials offer intriguing possibilities for novel electronic and chemical applications. Here, we report the discovery of an enantiomer-selective magnetoresistance effect in chiral gold nanocrystals. Based on precise control of nanocrystal chiral morphology using amino acid-directed synthesis, we demonstrate that an external magnetic field can dramatically modulate resistance in an enantiomer-specific manner. For a given enantiomer, a magnetic field in one direction alters the resistance by dozens of times, while the opposite field direction leaves it unchanged. This asymmetric response reverses for the opposite enantiomer and are reproduced in both single nanocrystals by conduction atomic force microscopy and nanocrystal thin films in solid state devices. We attribute this phenomenon to a chirality-driven charge pumping effect, where the interplay between the chiral morphology and the magnetic field selectively modifies the surface potential. The magnitude and sign of the magnetoresistance can be further tuned by the surface chemistry of the nanocrystal, as demonstrated through sulfide treatment. Our findings reveal a new form of chirality-dependent magnetoresistance, distinct from previously known effects such as chirality-induced spin selectivity and electric magnetochiral anisotropy. The ability to remotely control surface potentials of chiral nanostructures using magnetic fields could enable novel approaches in catalysis, drug delivery, and nanoelectronics.
format Preprint
id arxiv_https___arxiv_org_abs_2408_03501
institution arXiv
publishDate 2024
record_format arxiv
spellingShingle Enantiomer-Selective Magnetoresistance in Chiral Gold Nanocrystals by Magnetic Control of Surface Potentials
Wu, Fengxia
Wang, Ying
Zhao, Yufei
Yang, Zhenyu
Tian, Yu
Xie, Zuoti
Niu, Wenxin
Yan, Binghai
Guo, Cunlan
Mesoscale and Nanoscale Physics
Materials Science
Chiral nanomaterials offer intriguing possibilities for novel electronic and chemical applications. Here, we report the discovery of an enantiomer-selective magnetoresistance effect in chiral gold nanocrystals. Based on precise control of nanocrystal chiral morphology using amino acid-directed synthesis, we demonstrate that an external magnetic field can dramatically modulate resistance in an enantiomer-specific manner. For a given enantiomer, a magnetic field in one direction alters the resistance by dozens of times, while the opposite field direction leaves it unchanged. This asymmetric response reverses for the opposite enantiomer and are reproduced in both single nanocrystals by conduction atomic force microscopy and nanocrystal thin films in solid state devices. We attribute this phenomenon to a chirality-driven charge pumping effect, where the interplay between the chiral morphology and the magnetic field selectively modifies the surface potential. The magnitude and sign of the magnetoresistance can be further tuned by the surface chemistry of the nanocrystal, as demonstrated through sulfide treatment. Our findings reveal a new form of chirality-dependent magnetoresistance, distinct from previously known effects such as chirality-induced spin selectivity and electric magnetochiral anisotropy. The ability to remotely control surface potentials of chiral nanostructures using magnetic fields could enable novel approaches in catalysis, drug delivery, and nanoelectronics.
title Enantiomer-Selective Magnetoresistance in Chiral Gold Nanocrystals by Magnetic Control of Surface Potentials
topic Mesoscale and Nanoscale Physics
Materials Science
url https://arxiv.org/abs/2408.03501