Inorganic perovskite-based active multifunctional integrated photonic devices

被引:0
|
作者
Qi Han
Jun Wang
Shuangshuang Tian
Shen Hu
Xuefeng Wu
Rongxu Bai
Haibin Zhao
David W. Zhang
Qingqing Sun
Li Ji
机构
[1] Fudan University,State Key Laboratory of ASIC & System, School of Microelectronics
[2] Fudan University,Department of Optical Science and Engineering, School of Information Science and Technology, Key Laboratory of Micro & Nano Photonic Structures, Shanghai Frontiers Science Research Base of Intelligent Optoelectronics and Perception, and Sh
[3] Jiashan Fudan Institute,precision Optical Manufacturing Engineering Research Center
[4] Zhangjiang Fudan International Innovation Center,undefined
[5] Hubei Yangtze Memory Laboratories,undefined
来源
关键词
D O I
暂无
中图分类号
学科分类号
摘要
The development of highly efficient active integrated photonic circuits is crucial for advancing information and computing science. Lead halide perovskite semiconductors, with their exceptional optoelectronic properties, offer a promising platform for such devices. In this study, active micro multifunctional photonic devices were fabricated on monocrystalline CsPbBr3 perovskite thin films using a top-down etching technique with focused ion beams. The etched microwire exhibited a high-quality micro laser that could serve as a light source for integrated devices, facilitating angle-dependent effective propagation between coupled perovskite-microwire waveguides. Employing this strategy, multiple perovskite-based active integrated photonic devices were realized for the first time. These devices included a micro beam splitter that coherently separated lasing signals, an X-coupler performing transfer matrix functions with two distinguishable light sources, and a Mach-Zehnder interferometer manipulating the splitting and coalescence of coherent light beams. These results provide a proof-of-concept for active integrated functionalized photonic devices based on perovskite semiconductors, representing a promising avenue for practical applications in integrated optical chips.
引用
收藏
相关论文
共 50 条
  • [31] Perovskite-based solar cells with inorganic inverted hybrid planar heterojunction structure
    Lai, Wei-Chih
    Lin, Kun-Wei
    Guo, Tzung-Fang
    Chen, Peter
    Liao, Yuan-Yu
    AIP ADVANCES, 2018, 8 (01):
  • [32] Recent Development of Organic-Inorganic Perovskite-Based Tandem Solar Cells
    Hu, Junnan
    Cheng, Qiao
    Fan, Rundong
    Zhou, Huanping
    SOLAR RRL, 2017, 1 (06):
  • [33] Bipolar-resistive switching characteristics in lead-free inorganic double-halide perovskite-based memory devices
    Das, Susmita
    Haldar, Prabir Kumar
    Sarkar, Pranab Kumar
    BULLETIN OF MATERIALS SCIENCE, 2024, 47 (04)
  • [34] LEAD HALIDE PEROVSKITE-BASED ACTIVE HYPERBOLIC METAMATERIALS IN THE VISIBLE REGION
    Basak, Supratim
    Bar-On, Ofer
    Scheuer, Jacob
    METAMATERIALS XII, 2020, 11344
  • [35] Multifunctional strontium titanate perovskite-based composite photocatalysts for energy conversion and other applications
    Kuspanov, Zhengisbek
    Umirzakov, Arman
    Serik, Aigerim
    Baimenov, Alzhan
    Yeleuov, Mukhtar
    Daulbayev, Chingis
    INTERNATIONAL JOURNAL OF HYDROGEN ENERGY, 2023, 48 (98) : 38634 - 38654
  • [36] Perovskite-Based Solar Cells
    Hodes, Gary
    SCIENCE, 2013, 342 (6156) : 317 - 318
  • [37] Recent Advancements in Tin Halide Perovskite-Based Solar Cells and Thermoelectric Devices
    Baranwal, Ajay Kumar
    Hayase, Shuzi
    NANOMATERIALS, 2022, 12 (22)
  • [38] Operating Mechanism Principles and Advancements for Halide Perovskite-Based Memristors and Neuromorphic Devices
    Kim, So-Yeon
    Zhang, Heyi
    Rubio-Magnieto, Jenifer
    JOURNAL OF PHYSICAL CHEMISTRY LETTERS, 2024, 15 (40): : 10087 - 10103
  • [39] Inorganic and Hybrid Perovskite Based Laser Devices: A Review
    Stylianakis, Minas M.
    Maksudov, Temur
    Panagiotopoulos, Apostolos
    Kakavelakis, George
    Petridis, Konstantinos
    MATERIALS, 2019, 12 (06)
  • [40] Perovskite-Based Solar Cells
    Nogueira, Ana Flavia
    Schelhas, Laura T.
    JOURNAL OF PHOTONICS FOR ENERGY, 2018, 8 (02):