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Efficient Magnetism Controlled by Visible Light Using Perovskite Quantum Dots with Hybrid Interface Architecture

  • Meng Zhao
  • , Yifan Zhao
  • , Jian Wang
  • , Jiaqiang Liu
  • , Xi Zha
  • , Ye Quan
  • , Ge Wang
  • , Ming Liu
  • Xi'an Jiaotong University

Research output: Contribution to journalArticlepeer-review

3 Scopus citations

Abstract

Spintronic devices represent a promising advancement in information storage, sensors, RF/microwave tunable devices, and other applications. Recently, researchers have developed a novel approach to energy-efficiently manipulate spin states using photovoltaic (PV) thin-film. However, optimization strategies for this method are relatively scarce. Here, a PV/magnetic thin film heterojunction featuring a perovskite quantum dots (PQDs) composite layer is presented with a hybrid interfacial architecture consisting of PCBM/PCBM@CsPbI3 QDs/CsPbI3 QDs/ PTB7-Th heterojunction. The heterostructure facilitates more injection of photoelectrons into the ferromagnetic layer through an energy cascade mechanism model, resulting in greater magnetic changes compared to the PTB7-Th: PC71 BM system. Under 100 mW cm−2 sunlight illumination, the out-of-plane ferromagnetic resonance shift increases by 626% (from −19 to −138 Oe), owing to improved photo-induced electron doping. Additionally, the fluctuation of saturation magnetization (MS) is magnified by 200% (from 9% to 27%) as well. These findings demonstrate that the efficient photovoltaic layer plays a critical role in optimizing magnetic manipulation and lays the groundwork for the next generation of solar-driven spintronic devices.

Original languageEnglish
Article number2425518
JournalAdvanced Functional Materials
Volume35
Issue number26
DOIs
StatePublished - 26 Jun 2025

UN SDGs

This output contributes to the following UN Sustainable Development Goals (SDGs)

  1. SDG 7 - Affordable and Clean Energy
    SDG 7 Affordable and Clean Energy

Keywords

  • ferromagnetic resonance
  • hybrid interfacial architecture
  • magnetic anisotropy
  • optical control of magnetism
  • quantum dots

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