• Chinese Optics Letters
  • Vol. 19, Issue 3, 030002 (2021)
Zhiya Dang1、*, Yuqing Luo1, Xue-Sen Wang2, Muhammad Imran3, and Pingqi Gao1、**
Author Affiliations
  • 1School of Materials, Sun Yat-sen University, Guangzhou 510006, China
  • 2Department of Physics, National University of Singapore, Singapore 117551, Singapore
  • 3Department of Nanochemistry, Istituto Italiano di Tecnologia, Via Morego 30, Genova 16163, Italy
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    DOI: 10.3788/COL202119.030002 Cite this Article Set citation alerts
    Zhiya Dang, Yuqing Luo, Xue-Sen Wang, Muhammad Imran, Pingqi Gao. Electron-beam-induced degradation of halide-perovskite-related semiconductor nanomaterials[J]. Chinese Optics Letters, 2021, 19(3): 030002 Copy Citation Text show less
    References

    [1] Z. Lian, Q. Yan, Q. Lv, Y. Wang, L. Liu, L. Zhang, S. Pan, Q. Li, L. Wang, J. L. Sun. High-performance planar-type photodetector on (100) facet of MAPbI3 single crystal. Sci. Rep., 5, 16563(2015).

    [2] Q. Chen, J. Wu, X. Ou, B. Huang, J. Almutlaq, A. A. Zhumekenov, X. Guan, S. Han, L. Liang, Z. Yi, J. Li, X. Xie, Y. Wang, Y. Li, D. Fan, D. B. L. Teh, A. H. All, O. F. Mohammed, O. M. Bakr, T. Wu, M. Bettinelli, H. Yang, W. Huang, X. Liu. All-inorganic perovskite nanocrystal scintillators. Nature, 561, 88(2018).

    [3] Y.-H. Kim, G.-H. Lee, Y.-T. Kim, C. Wolf, H. J. Yun, W. Kwon, C. G. Park, T.-W. Lee. High efficiency perovskite light-emitting diodes of ligand-engineered colloidal formamidinium lead bromide nanoparticles. Nano Energy, 38, 51(2017).

    [4] Z. Chen, Y. Hu, J. Wang, Q. Shen, Y. Zhang, C. Ding, Y. Bai, G. Jiang, Z. Li, N. Gaponik. Boosting photocatalytic CO2 reduction on CsPbBr3 perovskite nanocrystals by immobilizing metal complexes. Chem. Mater., 32, 1517(2020).

    [5] A. K. Jena, A. Kulkarni, T. Miyasaka. Halide perovskite photovoltaics: background, status, and future prospects. Chem. Rev., 119, 3036(2019).

    [6] J. Shamsi, D. Kubicki, D. Kubicki, M. Anaya, Y. Liu, K. Ji, K. Frohna, C. P. Grey, R. H. Friend, S. D. Stranks, S. D. Stranks. Stable hexylphosphonate-capped blue-emitting quantum-confined CsPbBr3 nanoplatelets. ACS Energy Lett., 5, 1900(2020).

    [7] H. Gao. Halide perovskites—an emerging class of optoelectronic materials. Light, Energy, and the Environment, PTu3B.1(2016).

    [8] J. Kim, E. Kim, H. Moon, S. Yoo. Realization of foldable perovskite light-emitting diodes. OSA Advanced Photonics Congress, PvW1G.2(2020).

    [9] M. Kim. Perovskite photovoltaics: the road ahead. Opt. Photon. News, 31, 32(2020).

    [10] H. Fan, Y. Mu, C. Liu, Y. Zhu, G. Liu, S. Wang, Y. Li, P. Du. Random lasing of CsPbBr3 perovskite thin films pumped by modulated electron beam. Chin. Opt. Lett., 18, 011403(2020).

    [11] C. Wu, Y. Zou, T. Wu, M. Ban, V. Pecunia, Y. Han, Q. Liu, T. Song, S. Duhm, B. Sun. Improved performance and stability of all-inorganic perovskite light-emitting diodes by antisolvent vapor treatment. Adv. Funct. Mater., 27, 1700338(2017).

    [12] C. C. Boyd, R. Cheacharoen, T. Leijtens, M. D. McGehee. Understanding degradation mechanisms and improving stability of perovskite photovoltaics. Chem. Rev., 119, 3418(2019).

    [13] L. Zhang, P. H. L. Sit. Ab initio study of the role of oxygen and excess electrons in the degradation of CH3NH3PbI3. Asia Communications and Photonics Conference, Su1H.4(2017).

    [14] S. Huang, Z. Li, B. Wang, N. Zhu, C. Zhang, L. Kong, Q. Zhang, A. Shan, L. Li. Morphology evolution and degradation of CsPbBr3 nanocrystals under blue light-emitting diode illumination. ACS Appl. Mater. Interfaces, 9, 7249(2017).

    [15] J. Shamsi, P. Rastogi, V. Caligiuri, A. L. Abdelhady, D. Spirito, L. Manna, R. Krahne. Bright-emitting perovskite films by large-scale synthesis and photoinduced solid-state transformation of CsPbBr3 nanoplatelets. ACS Nano, 11, 10206(2017).

    [16] V. K. Ravi, P. K. Santra, N. Joshi, J. Chugh, S. K. Singh, H. Rensmo, P. Ghosh, A. Nag. Origin of the substitution mechanism for the binding of organic ligands on the surface of CsPbBr3 perovskite nanocubes. J. Phys. Chem. Lett., 8, 4988(2017).

    [17] Y. Chen, S. R. Smock, A. H. Flintgruber, F. A. Perras, R. L. Brutchey, A. J. Rossini. Surface termination of CsPbBr3 perovskite quantum dots determined by solid-state NMR spectroscopy. J. Am. Chem. Soc., 142, 6117(2020).

    [18] M. I. Bodnarchuk, S. C. Boehme, S. ten Brinck, C. Bernasconi, Y. Shynkarenko, F. Krieg, R. Widmer, B. Aeschlimann, D. Günther, M. V. Kovalenko, I. Infante. Rationalizing and controlling the surface structure and electronic passivation of cesium lead halide nanocrystals. ACS Energy Lett., 4, 63(2019).

    [19] M. N. Kabler, R. T. Williams. Vacancy-interstitial pair production via electron-hole recombination in halide crystals. Phys. Rev. B, 18, 1948(1978).

    [20] M. Szymonski, A. Droba, M. Goryl, J. J. Kolodziej, F. Krok. Alkali halide decomposition and desorption by photons—the role of excited point defects and surface topographies. J. Phys. Condens. Matter, 18, S1547(2006).

    [21] R. F. Haglund, N. H. Tolk. Time-resolved laser-induced fluorescence studies of electronically induced desorption from alkali halides. International Quantum Electronics Conference, THAA2(1986).

    [22] J. Ran, O. Dyck, X. Wang, B. Yang, D. B. Geohegan, K. Xiao. Electron-beam-related studies of halide perovskites: challenges and opportunities. Adv. Energy Mater., 10, 1903191(2020).

    [23] Z. Dang, J. Shamsi, F. Palazon, M. Imran, Q. A. Akkerman, S. Park, G. Bertoni, M. Prato, R. Brescia, L. Manna. In situ transmission electron microscopy study of electron beam-induced transformations in colloidal cesium lead halide perovskite nanocrystals. ACS Nano, 11, 2124(2017).

    [24] X. Chen, Z. Wang. Investigating chemical and structural instabilities of lead halide perovskite induced by electron beam irradiation. Micron, 116, 73(2019).

    [25] Z. Dang, J. Shamsi, Q. A. Akkerman, M. Imran, G. Bertoni, R. Brescia, L. Manna. Low-temperature electron beam-induced transformations of cesium lead halide perovskite nanocrystals. ACS Omega, 2, 5660(2017).

    [26] Q. Fan, G. V. Biesold-McGee, J. Ma, Q. Xu, S. Pan, J. Peng, Z. Lin. Lead-free halide perovskite nanocrystals: crystal structures, synthesis, stabilities, and optical properties. Angew. Chemie Int. Ed., 59, 1030(2020).

    [27] G. M. Paternò, N. Mishra, A. J. Barker, Z. Dang, G. Lanzani, L. Manna, A. Petrozza. Broadband defects emission and enhanced ligand Raman scattering in 0D Cs3Bi2I9 colloidal nanocrystals. Adv. Funct. Mater., 29, 1805299(2019).

    [28] K. Dave, M. H. Fang, Z. Bao, H. T. Fu, R. S. Liu. Recent developments in lead-free double perovskites: structure, doping, and applications. Chem. Asian J., 15, 242(2020).

    [29] R. Kaiukov, G. Almeida, S. Marras, Z. Dang, D. Baranov, U. Petralanda, I. Infante, E. Mugnaioli, A. Griesi, L. De Trizio, M. Gemmi, L. Manna. Cs3Cu4In2Cl13 nanocrystals: a perovskite-related structure with inorganic clusters at A sites. Inorg. Chem., 59, 548(2020).

    [30] J. Shamsi, Z. Dang, P. Bianchini, C. Canale, F. Di Stasio, R. Brescia, M. Prato, L. Manna. Colloidal synthesis of quantum confined single crystal CsPbBr3 nanosheets with lateral size control up to the micrometer range. J. Am. Chem. Soc., 138, 7240(2016).

    [31] Q. A. Akkerman, V. D’Innocenzo, S. Accornero, A. Scarpellini, A. Petrozza, M. Prato, L. Manna. Tuning the optical properties of cesium lead halide perovskite nanocrystals by anion exchange reactions. J. Am. Chem. Soc., 137, 10276(2015).

    [32] Z. W. Pan, Z. R. Dai, Z. L. Wang. Lead oxide nanobelts and phase transformation induced by electron beam irradiation. Appl. Phys. Lett., 80, 309(2002).

    [33] N. J. Long, A. K. Petford-Long. In-situ electron-beam-induced reduction of CuO: a study of phase transformations in cupric oxide. Ultramicroscopy, 20, 151(1986).

    [34] Y. Tamou, S. I. Tanaka. Formation and coalescence of tungsten nanoparticles under electron beam irradiation. Nanostruct. Mater., 12, 123(1999).

    [35] N. Jiang. Electron beam damage in oxides: a review. Rep. Prog. Phys., 79, 16501(2015).

    [36] S. Sepulveda-Guzman, N. Elizondo-Villarreal, D. Ferrer, A. Torres-Castro, X. Gao, J. P. Zhou, M. Jose-Yacaman. In situ formation of bismuth nanoparticles through electron-beam irradiation in a transmission electron microscope. Nanotechnology, 18, 335604(2007).

    [37] M. L. Knotek, P. J. Feibelman. Ion desorption by core-hole auger decay. Phys. Rev. Lett., 40, 964(1978).

    [38] S. Nishigaki. Auger electron spectroscopy of TiO2: inter- and intra-atomic transitions connected with the valence band. Surf. Sci., 125, 762(1983).

    [39] R. F. Egerton, P. Li, M. Malac. Radiation damage in the TEM and SEM. Micron, 35, 399(2004).

    [40] R. F. Egerton. Control of radiation damage in the TEM. Ultramicroscopy, 127, 100(2013).

    [41] S. Chen, X. Zhang, J. Zhao, Y. Zhang, G. Kong, Q. Li, N. Li, Y. Yu, N. Xu, J. Zhang, K. Liu, Q. Zhao, J. Cao, J. Feng, X. Li, J. Qi, D. Yu, J. Li, P. Gao. Atomic scale insights into structure instability and decomposition pathway of methylammonium lead iodide perovskite. Nat. Commun., 9, 4087(2018).

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    Data from CrossRef

    [1] Zhiya Dang, Yuqing Luo, Yangbing Xu, Pingqi Gao, Xue-Sen Wang. Transformation and degradation of metal halide perovskites induced by energetic electrons and their practical implications. Nano Futures, 5, 032001(2021).

    Zhiya Dang, Yuqing Luo, Xue-Sen Wang, Muhammad Imran, Pingqi Gao. Electron-beam-induced degradation of halide-perovskite-related semiconductor nanomaterials[J]. Chinese Optics Letters, 2021, 19(3): 030002
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