[1] C Tan, X Cao, X Wu, et al. Recent advances in ultrathin two-dimensional nanomaterials. Chemical Reviews, 117, 6225-6331(2017).
[2] M Akhear, G Anderson, R Zhao, et al. Recent advances in synthesis, properties, and applications of phosphorene. 2D Materials and Applications, 1, 1600152(2017).
[3] H Chu, D Li. Recent progress on fabrication, charaterization and nonlinear optical properties of bismuth-based nanomaterials. Chinese Journal of Lasers, 48, 1208002(2021).
[4] Q Liu, H Zhang. Research progress of low-dimensional group-VA nanomaterials: From structural properties to preparation applications. Journal of Synthetic Crystals, 50, 578-586(2021).
[5] Z Sun, A Martinez, F Wang. Optical modulators with 2D layered materials. Nature Photonics, 10, 227-238(2016).
[6] H Chen, M Luo, N Shen, et al. Research progress of two-dimensional layered materials-based heterojunction photo-detectors(Invited). Infrared and Laser Engineering, 50, 20211018(2021).
[7] Z Luo, D Wu, B Xu, et al. Two-dimensional material-based saturable absorbers: towards compact visible-wavelength all-fiber pulsed lasers. Nanoscale, 8, 1066-1138(2016).
[8] C Xing, G Jing, X Liang, et al. Graphene oxide/black phosphorus nanoflake aerogels with robust thermo-stability and significantly enhanced photothermal properties in air. Nanoscale, 9, 8096-8101(2017).
[9] A D Franklin. Nanomaterials in transistors: From high-performance to thin-film applications. Science, 349, 2750-2761(2015).
[10] Y Sun, Q Wu, G Shi. Graphene based new energy materials. Energy & Environmental Science, 4, 1113-1124(2011).
[11] B Anasori, M R Lukatskaya, Y Gogotsi. 2D metal carbides and nitrides (MXenes) for energy storage. Nature Reviews Materials, 2, 14088-14102(2017).
[12] K S Novoselov, A K Geim, S V Morozov, et al. Electric field effect in atomically thin carbon films. Science, 306, 115501-115505(2004).
[13] A Alexander, Balandin, S Ghosh, et al. Superior thermal conductivity of single-layer graphene. Nanno Letters, 8, 902-907(2008).
[14] F Zhou, X Jin. All-fiber graphene electro-absorption modulator. Optics and Precision Engineering, 24, 2117-2125(2016).
[15] K S Novoselov, A K Geim, S V Morozov, et al. Two-dimensional gas of massless dirac fermions in graphene. Nature, 438, 197-200(2005).
[16] Q Yang, J Shen, X Wei, et al. Recent progress on the mechanism and device structure of graphene-based infrared detectors. Infrared and Laser Engineering, 49, 0103003(2020).
[17] B Micheleb, A S Gary, der Zant H S J van, et al. The effect of the substrate on the raman and photoluminescence emission of single-layer MoS2. Nano Research, 7, 561-571(2015).
[18] Z Li, H Qiao, Z Guo, et al. High-performance photo-electrochemical photodetector based on liquid-exfoliated few-layered inse nanosheets with enhanced stability. Advanced Functional Materials, 28, 1705237-1705244(2018).
[19] M Chhowalla, H S Shin, G Eda, et al. The chemistry of two-dimensional layered transition metal dichalcogenide nanosheets. Nature Chemical, 5, 263-338(2013).
[20] Li Gao, W Bao, A V Kuklin, et al. Hetero-MXenes: Theory, synthesis, and emerging applications. Advanced Materials, 33, 2004129-2004172(2021).
[21] Y Wang, F Zhang, X Gao, et al. Freestanding non-periodic GaN gratings in visible wavelength region. Optics and Precision Engineering, 25, 3020-3026(2017).
[22] J Sun, C Lu, Y Song, et al. Recent progress in the tailored growth of two-dimensional hexagonal boron nitride via chemical vapour deposition. Chemical Society Reviews, 47, 4242-4257(2018).
[23] X Kong, Q Liu, C Zhang, et al. Elemental two-dimensional nanosheets beyond graphene. Chemical Society Reviews, 46, 2127-2157(2017).
[24] S Zhang, S Guo, Z Chen, et al. Recent progress in 2D group-VA semiconductors: from theory to experiment. Chemical Society Reviews, 47, 982-1021(2018).
[25] K Khan, A K Tareen, Q U Khan, et al. Novel synthesis, properties and applications of emerging group VA two-dimensional monoelemental materials (2D-Xenes). Materials Chemistry Frontiers, 5, 6333-6391(2021).
[26] M Pica, R D’amato. Chemistry of phosphorene: Synthesis, functionalization and biomedical applications in an update review. Inorganics, 8, 1-18(2020).
[27] J Zhao, Z Qi, Y Xu, et al. Theoretical studies on tunable electronic structures and potential applications of two-dimensional arsenene based materials. WIREs Computational Molecular Science, 9, 1387-1410(2018).
[28] X Wang, J He, B Zhou, et al. Bandgap-tunable preparation of smooth and large two-dimensional antimonene. Angewandte Chemie-International Edition, 57, 8668-8673(2018).
[29] O Guo, S Wang, Z Wu, et al. Sub-200 fs soliton mode-locked fiber laser based on bismuthene saturable absorber. Optical Express, 26, 22750-22760(2018).
[30] H Li, P Xu, L Xu, et al. Negative capacitance tunneling field effect transistors based on monolayer arsenene, antimonene, and bismuthene. Semiconductor Science and Technology, 34, 085006(2019).
[31] H Pan, W Huang, H Chu, et al. Bismuthene quantum dots based optical modulator for MIR lasers at 2 μm. Optical Materials, 102, 109830-108936(2020).
[32] A Jain, A J Mcgaughey. Strongly anisotropic in-plane thermal transport in single-layer black phosphorene. Scientific Reports, 5, 8501-8506(2015).
[33] L Goulart, S Fernandes L DA, dos Santos C Lange, et al. Electronic and structural properties of black phosphorene doped with Si, B and N. Physics Letters A, 383, 125945-125951(2019).
[34] Z Liu, Y Sun, H Cao, et al. Unzipping of black phosphorus to form zigzag-phosphorene nanobelts. Nature Communi-cations, 11, 3917-1927(2020).
[35] K Pu, X Dai, D Jia, et al. Structural, electrical and optical properties of halogen doped phosphorene based on density functional theory. Journal of Alloys and Compounds, 812, 152125-152133(2020).
[36] J Eke, P A Mills, J R Page, et al. Nanohybrid membrane synthesis with phosphorene nanoparticles: A study of the addition, stability and toxicity. Polymers (Basel), 12, 1555(2020).
[37] S Zhang, M Xie, F Li, et al. Semiconducting group 15 monolayers: A broad range of band gaps and high carrier mobilities. Angewandte Chemie-International Edition, 55, 1666-1675(2016).
[38] S Zhang, Z Yan, Y Li, et al. Atomically thin arsenene and antimonene: semimetal-semiconductor and indirect-direct band-gap transitions. Angewandte Chemie-International Edition, 54, 3112-3117(2015).
[39] D Wu, X Shen, J Liu, et al. Electrochemical exfoliation from an industrial ingot: ultrathin metallic bismuth nanosheets for excellent CO2 capture and electrocatalytic conversion. Nanoscale, 11, 22125-22133(2019).
[40] C Cao, D Ma, J Gu, et al. Metal-organic layers leading to atomically thin bismuthene for efficient carbon dioxide electroreduction to liquid fuel. Angewandte Chemie-International Edition, 59, 15014-15020(2020).
[41] E Aktürk, O Ü Aktürk, S Ciraci. Single and bilayer bismuthene: Stability at high temperature and mechanical and electronic properties. Physical Review B, 94, 014115-014124(2016).
[42] W Huang, J Zhu, M Wang, et al. Emerging mono elemental bismuth nanostructures: Controlled synthesis and their versatile applications. Advanced Functional Materials, 31, 2007584-2007608(2020).
[43] L Lu, Z Liang, L Wu, et al. Few-layer bismuthene: Sonochemical exfoliation, nonlinear optics and applications for ultrafast photonics with enhanced stability. Laser & Photonics Reviews, 12, 1700221-1700231(2018).
[44] T Xue, S R Bongu, H Huang, et al. Ultrasensitive detection of microRNA using a bismuthene-enabled fluorescence quenching biosensor. Chemical Communications, 56, 7041-7044(2020).
[45] Q Yang, R Liu, C Huang, et al. 2D bismuthene fabricated via acid-intercalated exfoliation showing strong nonlinear near-infrared responses for mode-locking lasers. Nanoscale, 10, 21106-21115(2018).
[46] Y Zhang, X Zhang, Y Ling, et al. Controllable synthesis of few-layer bismuth subcarbonate by electrochemical exfoliation for enhanced CO2 reduction performance. Angewandte Chemie-International Edition, 57, 13283-13287(2018).
[47] C Shen, T Cheng, C Liu, et al. Bismuthene from sono-electrochemistry as a superior anode for potassium-ion batteries. Journal of Materials Chemistry A, 8, 453-460(2020).
[48] O H Basyouni, M Abdelfatah, M E El-Khouly, et al. Facile and environmentally friendly fabrication of few-layer bismuthene by electrochemical exfoliation method for ultrafast photonic applications. Journal of Alloys and Compounds, 882, 160766-160777(2021).
[49] M Jankowskim, D Kaminshi, K Vergeer, et al. Controlling the growth of Bi(110) and Bi(111) films on an insulating substrate. Nanotechnology, 28, 155602-155615(2017).
[50] F Reis, G Li, L Dudy, et al. Bismuthene on a SiC substrate: A candidate for a high-temperature quantum spin hall material. Science, 357, 8142-8150(2017).
[51] Z Yang, Z Wu, Y Lyu, et al. Centimeter scale growth of two-dimensional layered high mobility bismuth films by pulsed laser deposition. InfoMat, 1, 98-107(2019).
[52] T Nagao, J T Sadowski, M Saito, et al. Nanofilm allotrope and phase transformation of ultrathin Bi film on Si(111)-7x7. Physical Review Letters, 93, 105501-105504(2004).
[53] J Chen, Iwasaki. H, Kikegawa T. Structural study of the high pressure high temperature phase of bismuth using high energy synchrotronsradiation. Pergamon, 58, 247-255(1996).
[54] S A Putri, Y Yamaguchi, T A Arasoca, et al. Electronic band structures of group-IV two-dimensional materials: Spin-orbit coupling and group theoretical analysis. Surface Science, 714, 121917-121923(2021).
[55] X Liu, S Zhang, S Guo, et al. Advances of 2D bismuth in energy sciences. Chemical Society Reviews, 49, 263-285(2020).
[56] F Ersan, E Aktürk, S Ciraci. Stable single-layer structure of group-V elements. Physical Review B, 94, 245417(2016).
[57] R R Freitas, F B Mota, R Rivelino, et al. Spin-orbit-induced gap modification in buckled honeycomb XBi and XBi3 (X = B, Al, Ga, and In) sheets. Journal of Physics-Condensed Matter, 27, 485306-485314(2015).
[58] L Kuo, C Chen, S C SMITH. Phosphorene: Fabrication, properties, and applications. Journal of Physical Chemistry Letters, 6, 2794-2805(2015).
[59] X Liu, T Xu, X Wu, et al. Top-down fabrication of sub-nanometre semiconducting nanoribbons derived from molybdenum disulfide sheets. Nature Communications, 4, 1776-1782(2013).
[60] T Nagao, J T Sadowsi, M Saito, et al. Strong lateral growth and crystallization via two-dimensional allotropic transformation of semi-metal Bi film. Surface Science, 590, 247-252(2005).
[61] K Yamada, S Yamauchi Souma, K, et al. Ultrathin bismuth film on 1 T-TaS2: Structural transition and charge-density-wave proximity effect. Nano Letters, 18, 3235-3240(2018).
[62] W Ren, H Cheng. The global growth of graphene. Nat Nanotechnol, 9, 726-756(2014).
[63] D Wang, C Liu, Y Zhang, et al. CO2 electroreduction to formate at a partial current density up to 590 mA mg-1 via micrometer-scale lateral structuring of bismuth nanosheets. Small, 17, 2100602-2100609(2021).
[64] L Zhang, T Gong, Zhiqiang Yu, et al. Recent advances in hybridization, doping, and functionalization of 2D Xenes. Advanced Functional Materials, 31, 2005471-2005481(2020).
[65] A Wang, W Hong, L Yang, et al. Bi-based electrode materials for alkali metal-ion batteries. Small, 16, 2004022-2004045(2020).
[66] P Guo, X Li, T Chai, et al. Few-layer bismutzheci hene for robust ultrafast photonics in C-band optical communications. Nanotechnology, 30, 354002-354009(2019).
[67] X Zhai, B Ma, Q Wang, et al. 2D materials towards ultrafast photonics application. Physical Chemistry Chemical Physical, 22, 22140-22156(2020).
[68] Z Lv, Y Fang, T Feng, et al. The principle, performance characterization and research progress of nonlinear optical limiting materials. Chinese Optics, 15, 625-639(2022).
[69] J Zhu, Z Ma, L Gao, et al. Reflective laser protective coating based on plasma spraying. Chinese Optics, 10, 578-587(2017).
[70] T Chai, X Li, T Feng, et al. Few-layer bismuthene for ultrashort pulse generation in dissipative system based on evanescent field. Nanoscale, 10, 17617-17622(2018).