• Acta Photonica Sinica
  • Vol. 51, Issue 2, 0251216 (2022)
Xiangming FANG1, Ping RONG2, Shuai REN2, Zhaoyang WANG2, Shiyong GAO2、*, and Jinzhong WANG2
Author Affiliations
  • 1Department of Materials and Chemical Engineering,Taiyuan University,Taiyuan 030032,China
  • 2School of Materials Science and Engineering,Harbin Institute of Technology,Harbin 150001,China
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    DOI: 10.3788/gzxb20225102.0251216 Cite this Article
    Xiangming FANG, Ping RONG, Shuai REN, Zhaoyang WANG, Shiyong GAO, Jinzhong WANG. Preparation and Performance of g-C3N4/Bi2S3 Composite Broad-band Photodetector[J]. Acta Photonica Sinica, 2022, 51(2): 0251216 Copy Citation Text show less
    References

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    [3] X D LI, C T GAO, H G DUAN et al. High-performance photoelectrochemical-type self-powered UV photodetector using epitaxial TiO2/SnO2 branched heterojunction nanostructure. Small, 9, 2005-2011(2013).

    [4] H J FANG, H L MA, C ZHENF et al. A high-performance transparent photodetector via building hierarchical g-C3N4 nanosheets/CNTs van der Waals heterojunctions by a facile and scalable approach. Applied Surface Science, 529, 147122(2020).

    [5] Q HAO, C A XIA, Y M HUANG et al. Accelerated separation of photogenerated charge carriers and enhanced photocatalytic performance of g-C3N4 by Bi2S3 nanoparticles. Chinese Journal of Catalysis, 41, 249-258(2020).

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    [7] H YU, J L WANG, T T WANG et al. Scalable colloidal synthesis of uniform Bi2S3 nanorods as sensitive materials for visible-light photodetectors. CrystEngComm, 19, 727-733(2017).

    [8] J Z XU, H N LI, S F FANG et al. Synthesis of bismuth sulfide nanobelts for high performance broadband photodetector. Journal of Materials Chemistry C, 8, 2102-2108(2020).

    [9] J F CHAO, S M XING, Z D LIU et al. Large-scale synthesis of Bi2S3 nanorods and nanoflowers for flexible near infrared laser detectors and visible light photodetectors. Materials Research Bulletin, 98, 194-199(2018).

    [10] Yupei LI, Xiaojing WANG, Jun ZHAO et al. In-situ construction of 0D/2D Bi2S3/g-C3N4 heterojunction with enhanced photocatalytic performance. Materials Reports, 34, 15033-15038(2020).

    [11] Weiguo LI, Ping XUE, Xuyang HUANG et al. Preparation and characterization of g-C3N4/Bi2S3 composites by an ionothermal method. Journal of Nanchang Hangkong University:Natural Sciences, 30, 44-48(2016).

    [12] Fang CAO, Tian CHEN, Shuting FENG et al. Effect of porous modification on preparation and photocatalytic activity of g-C3N4/CdS composite photocatalyst. Journal of Jilin University (Secience Edition), 57, 684-690(2019).

    [13] S M NI, F Y GUO, D B WANG et al. Effect of MgO surface modification on the TiO2 nanowires electrode for self-powered UV photodetectors. ACS Sustainable Chemistry & Engineering, 6, 7265-7272(2018).

    [14] Qiuyan REN, Min FU, Xiaolu WU et al. Microwave synthesis of Bi2S3/g-C3N4 composite photocatalyst and its photocatalytic activity. Journal of Synthetic Crystals, 48, 1462-1468(2019).

    [15] H MCDANIEL, N FUKE, N SM AKAROV et al. An integrated approach to realizing high-performance liquid-junction quantum dot sensitized solar cells. Nature Communications, 4, 2887(2013).

    Xiangming FANG, Ping RONG, Shuai REN, Zhaoyang WANG, Shiyong GAO, Jinzhong WANG. Preparation and Performance of g-C3N4/Bi2S3 Composite Broad-band Photodetector[J]. Acta Photonica Sinica, 2022, 51(2): 0251216
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