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Colloid driven low supersaturation crystallization for atomically thin Bismuth halide perovskite

Author

Listed:
  • Lutao Li

    (Soochow University)

  • Junjie Yao

    (Soochow University)

  • Juntong Zhu

    (Soochow University)

  • Yuan Chen

    (Shandong University of Science and Technology)

  • Chen Wang

    (Shandong University of Science and Technology)

  • Zhicheng Zhou

    (Soochow University)

  • Guoxiang Zhao

    (Soochow University)

  • Sihan Zhang

    (Soochow University)

  • Ruonan Wang

    (Soochow University)

  • Jiating Li

    (Soochow University)

  • Xiangyi Wang

    (Soochow University)

  • Zheng Lu

    (Soochow University)

  • Lingbo Xiao

    (Soochow University)

  • Qiang Zhang

    (Shandong University of Science and Technology)

  • Guifu Zou

    (Soochow University)

Abstract

It is challenging to grow atomically thin non-van der Waals perovskite due to the strong electronic coupling between adjacent layers. Here, we present a colloid-driven low supersaturation crystallization strategy to grow atomically thin Cs3Bi2Br9. The colloid solution drives low-concentration solute in a supersaturation state, contributing to initial heterogeneous nucleation. Simultaneously, the colloids provide a stable precursor source in the low-concentration solute. The surfactant is absorbed in specific crystal nucleation facet resulting in the anisotropic growth of planar dominance. Ionic perovskite Cs3Bi2Br9 is readily grown from monolayered to six-layered Cs3Bi2Br9 corresponding to thicknesses of 0.7, 1.6, 2.7, 3.6, 4.6 and 5.7 nm. The atomically thin Cs3Bi2Br9 presents layer-dependent nonlinear optical performance and stacking-induced second harmonic generation. This work provides a concept for growing atomically thin halide perovskite with non-van der Waal structures and demonstrates potential application for atomically thin single crystals’ growth with strong electronic coupling between adjacent layers.

Suggested Citation

  • Lutao Li & Junjie Yao & Juntong Zhu & Yuan Chen & Chen Wang & Zhicheng Zhou & Guoxiang Zhao & Sihan Zhang & Ruonan Wang & Jiating Li & Xiangyi Wang & Zheng Lu & Lingbo Xiao & Qiang Zhang & Guifu Zou, 2023. "Colloid driven low supersaturation crystallization for atomically thin Bismuth halide perovskite," Nature Communications, Nature, vol. 14(1), pages 1-8, December.
  • Handle: RePEc:nat:natcom:v:14:y:2023:i:1:d:10.1038_s41467-023-39445-x
    DOI: 10.1038/s41467-023-39445-x
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    as
    1. Sanfeng Wu & Sonia Buckley & John R. Schaibley & Liefeng Feng & Jiaqiang Yan & David G. Mandrus & Fariba Hatami & Wang Yao & Jelena Vučković & Arka Majumdar & Xiaodong Xu, 2015. "Monolayer semiconductor nanocavity lasers with ultralow thresholds," Nature, Nature, vol. 520(7545), pages 69-72, April.
    2. Zefang Wang & Daniel A. Rhodes & Kenji Watanabe & Takashi Taniguchi & James C. Hone & Jie Shan & Kin Fai Mak, 2019. "Evidence of high-temperature exciton condensation in two-dimensional atomic double layers," Nature, Nature, vol. 574(7776), pages 76-80, October.
    3. Alberto Ciarrocchi & Ahmet Avsar & Dmitry Ovchinnikov & Andras Kis, 2018. "Thickness-modulated metal-to-semiconductor transformation in a transition metal dichalcogenide," Nature Communications, Nature, vol. 9(1), pages 1-6, December.
    4. Alessandro Stroppa & Domenico Di Sante & Paolo Barone & Menno Bokdam & Georg Kresse & Cesare Franchini & Myung-Hwan Whangbo & Silvia Picozzi, 2014. "Tunable ferroelectric polarization and its interplay with spin–orbit coupling in tin iodide perovskites," Nature Communications, Nature, vol. 5(1), pages 1-8, December.
    5. Yunxia Zhang & Yucheng Liu & Zhuo Xu & Haochen Ye & Zhou Yang & Jiaxue You & Ming Liu & Yihui He & Mercouri G. Kanatzidis & Shengzhong (Frank) Liu, 2020. "Publisher Correction: Nucleation-controlled growth of superior lead-free perovskite Cs3Bi2I9 single-crystals for high-performance X-ray detection," Nature Communications, Nature, vol. 11(1), pages 1-2, December.
    6. Lei Liu & Taotao Li & Liang Ma & Weisheng Li & Si Gao & Wenjie Sun & Ruikang Dong & Xilu Zou & Dongxu Fan & Liangwei Shao & Chenyi Gu & Ningxuan Dai & Zhihao Yu & Xiaoqing Chen & Xuecou Tu & Yuefeng N, 2022. "Uniform nucleation and epitaxy of bilayer molybdenum disulfide on sapphire," Nature, Nature, vol. 605(7908), pages 69-75, May.
    7. Bevin Huang & Genevieve Clark & Efrén Navarro-Moratalla & Dahlia R. Klein & Ran Cheng & Kyle L. Seyler & Ding Zhong & Emma Schmidgall & Michael A. McGuire & David H. Cobden & Wang Yao & Di Xiao & Pabl, 2017. "Layer-dependent ferromagnetism in a van der Waals crystal down to the monolayer limit," Nature, Nature, vol. 546(7657), pages 270-273, June.
    8. Mingzhen Liu & Michael B. Johnston & Henry J. Snaith, 2013. "Efficient planar heterojunction perovskite solar cells by vapour deposition," Nature, Nature, vol. 501(7467), pages 395-398, September.
    9. Luis Lanzetta & Thomas Webb & Nourdine Zibouche & Xinxing Liang & Dong Ding & Ganghong Min & Robert J. E. Westbrook & Benedetta Gaggio & Thomas J. Macdonald & M. Saiful Islam & Saif A. Haque, 2021. "Degradation mechanism of hybrid tin-based perovskite solar cells and the critical role of tin (IV) iodide," Nature Communications, Nature, vol. 12(1), pages 1-11, December.
    10. C. R. Dean & L. Wang & P. Maher & C. Forsythe & F. Ghahari & Y. Gao & J. Katoch & M. Ishigami & P. Moon & M. Koshino & T. Taniguchi & K. Watanabe & K. L. Shepard & J. Hone & P. Kim, 2013. "Hofstadter’s butterfly and the fractal quantum Hall effect in moiré superlattices," Nature, Nature, vol. 497(7451), pages 598-602, May.
    11. Hong Wang & Xiangwei Huang & Junhao Lin & Jian Cui & Yu Chen & Chao Zhu & Fucai Liu & Qingsheng Zeng & Jiadong Zhou & Peng Yu & Xuewen Wang & Haiyong He & Siu Hon Tsang & Weibo Gao & Kazu Suenaga & Fe, 2017. "High-quality monolayer superconductor NbSe2 grown by chemical vapour deposition," Nature Communications, Nature, vol. 8(1), pages 1-8, December.
    12. Jiadong Zhou & Junhao Lin & Xiangwei Huang & Yao Zhou & Yu Chen & Juan Xia & Hong Wang & Yu Xie & Huimei Yu & Jincheng Lei & Di Wu & Fucai Liu & Qundong Fu & Qingsheng Zeng & Chuang-Han Hsu & Changli , 2018. "A library of atomically thin metal chalcogenides," Nature, Nature, vol. 556(7701), pages 355-359, April.
    13. Yuan Liu & Yu Huang & Xiangfeng Duan, 2019. "Van der Waals integration before and beyond two-dimensional materials," Nature, Nature, vol. 567(7748), pages 323-333, March.
    14. A. K. Geim & I. V. Grigorieva, 2013. "Van der Waals heterostructures," Nature, Nature, vol. 499(7459), pages 419-425, July.
    15. Yunxia Zhang & Yucheng Liu & Zhuo Xu & Haochen Ye & Zhou Yang & Jiaxue You & Ming Liu & Yihui He & Mercouri G. Kanatzidis & Shengzhong (Frank) Liu, 2020. "Nucleation-controlled growth of superior lead-free perovskite Cs3Bi2I9 single-crystals for high-performance X-ray detection," Nature Communications, Nature, vol. 11(1), pages 1-11, December.
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