铁磁性
材料科学
反常光电效应
光电流
磁性半导体
光电子学
凝聚态物理
磁电阻
自旋电子学
半导体
巨磁阻
光电效应
电子
光伏系统
磁场
光电导性
霍尔效应
半导体器件
磁各向异性
作者
Mingliang Cheng,Zheng Wang,Jingyu Ji,Jianzhao Wang,Yiting Mo,Yijun Huang,Zhenhua Zhang,Chenxi Lu,Senjiang Yu,Xiulin Dong,Liang Hu,Xuefeng Zhang
标识
DOI:10.1038/s41467-026-74473-3
摘要
Abstract Efficient bulk photovoltaic (BPV) conversion and room-temperature ferromagnetism are difficult to combine, because the itinerant electrons that support magnetic order favor metallic transport, whereas BPV generation requires a semiconducting state with broken inversion symmetry. Here, we show that oxygen-plasma implantation transforms metallic Fe 3 GaTe 2 into a ferromagnetic semiconductor with a giant BPV response, enabling zero-bias photocurrent generation in a non-centrosymmetric lattice. Oxygen incorporation localizes itinerant Fe d -electrons, induces p-type semiconducting transport and polar electronic structure, while oxygen-associated exchange pathways allow persistent ferromagnetic state above room temperature. The resulting devices exhibit spontaneous broadband photoresponse, with short-circuit current densities approaching 30 A cm −2 and a BPV coefficient up to 0.25 V −1 . The photovoltaic current can be linearly programmed by low magnetic fields based on field-dependent magnetoresistive modulation. Using the experimentally calibrated device response, we demonstrate magnetically programmable feature separation and image restoration with 92.3% recognition accuracy, establishing oxygen-engineered Fe 3 GaTe 2 as a platform for self-powered, reconfigurable magnetic optoelectronics.
科研通智能强力驱动
Strongly Powered by AbleSci AI