2D Monoelements. Группа авторов

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      36. Niu, T., Zhou, W., Zhou, D., Hu, X., Zhang, S., Zhang, K., Zhou, M., Fuchs, H., Zeng, H., Modulating epitaxial atomic structure of antimonene through interface design. Adv. Mater., 31, 1902606, 2019.

      37. Peng, L., Ye, S., Song, J., Qu, J., Solution-phase synthesis of few-layer hexagonal antimonene nanosheets via anisotropic growth. Angew. Chem. Int. Ed., 58, 9891, 2019.

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      46. Song, Y., Chen, Y., Jiang, X., Liang, W., Wang, K., Liang, Z., Ge, Y., Zhang, F., Wu, L., Zheng, J., Ji, J., Zhang, H., Nonlinear few-layer antimonene-based all-optical signal processing: Ultrafast optical switching and high-speed wavelength conversion. Adv. Opt. Mater., 6, 1701287, 2018.

      47. Song, Y., Liang, Z., Jiang, X., Chen, Y., Li, Z., Lu, L., Ge, Y., Wang, K., Zheng, J., Lu, S., Ji, J., Zhang, H., Few-layer antimonene decorated microfiber: Ultrashort pulse generation and all-optical thresholding with enhanced long term stability. 2D Mater., 4, 045010, 2017.

      48. Zhang, F., He, J., Xiang, Y., Zheng, K., Xue, B., Ye, S., Peng, X., Hao, Y., Lian, J., Zeng, P., Qu, J., Song, J., Semimetal-semiconductor transitions for monolayer antimonene nanosheets and their application in perovskite solar cells. Adv. Mater., 30, 1803244, 2018.

      49. Zhang, C., Li, Y., Zhang, P., Qiu, M., Jiang, X., Zhang, H., Antimonene quantum dot-based solid-state solar cells with enhanced performance and high stability. Sol. Energy Mater. Sol. Cells, 189, 11, 2019.

      50. Wang, Z., Zhang, R., Zhao, M., Wang, Z., Wei, B., Zhang, X., Feng, S., Cao, H., Liu, P., Hao, Y., Wang, H., Xu, B., Pennycook, S.J., Guo, J., High-yield production of stable antimonene quantum sheets for highly efficient organic photovoltaics. J. Mater. Chem. A, 6, 23773, 2018.

      51. Voiry, D., Salehi, M., Silva, R., Fujita, T., Chen, M., Asefa, T., Shenoy, V.B., Eda, G., Chhowalla, M., Conducting MoS2 nanosheets as catalysts for hydrogen evolution reaction. Nano Lett., 13, 6222, 2013.

      52. Yu, X., Prevot, M.S., Guijarro, N., Sivula, K., Self-assembled 2D WSe2 thin films for photoelectrochemical hydrogen production. Nat. Commun., 6, 7596, 2015.

      53. Zhang, K., Jin, B., Park, C., Cho, Y., Song, X., Shi, X., Zhang, S., Kim, W., Zeng, H., Park, J.H., Black phosphorene as a hole extraction layer boosting solar water splitting of oxygen evolution catalysts. Nat. Commun., 10, 2001, 2019.

      54. Ren, X., Li, Z., Qiao, H., Liang, W., Liu, H., Zhang, F., Qi, X., Liu, Y., Huang, Z., Zhang, D., Li, J., Zhong, J., Zhang, H., Few-layer antimonene nanosheet: A metal-free bifunctional electrocatalyst for effective water splitting. ACS Appl. Energy Mater., 2, 4774, 2019.

      56. Gu, J., Du, Z., Zhang, C., Ma, J., Li, B., Yang, S., Liquid-phase exfoliated metallic antimony nanosheets toward high volumetric sodium storage. Adv. Energy Mater., 7, 1700447, 2017.

      57. Tian, W., Zhang, S., Huo, C., Zhu, D., Li, Q., Wang, L., Ren, X., Xie, L., Guo, S., Chu, P.K., Zeng, H., Huo, K., Few-layer antimonene: Anisotropic expansion and reversible crystalline-phase evolution enable large-capacity and long-life Na-ion batteries. ACS Nano, 12, 1887, 2018.

      58. Gao, Y., Tian, W., Huo, C., Zhang, K., Guo, S., Zhang, S., Song, X., Jiang, L., Huo, K., Zeng, H., Tailoring natural layered β-phase antimony into few layer antimonene for Li storage with high rate capabilities. J. Mater. Chem. A, 7, 3238, 2019.

      59. Martínez-Periñán, E., Down, M.P., Gibaja, C., Lorenzo, E., Zamora, F., Banks, C.E., Antimonene: A novel 2D nanomaterial for supercapacitor applications. Adv. Energy Mater., 8, 1702606, 2018.

      60. Tao, W., Kong, N., Ji, X., Zhang, Y., Sharma, A., Ouyang, J., Qi, B., Wang, J., Xie, N., Kang, C., Zhang, H., Farokhzad, O.C., Kim, J.S., Emerging twodimensional monoelemental materials (Xenes) for biomedical applications. Chem. Soc. Rev., 48, 2891, 2019.

      61. Tao, W., Ji, X., Xu, X., Islam, M.A., Li, Z., Chen, S., Saw, P.E., Zhang, H., Bharwani, Z., Guo, Z., Shi, J., Farokhzad, O.C., Antimonene quantum dots: Synthesis and application as near-infrared photothermal aagents for effective cancer therapy. Angew. Chem. Int. Ed., 56, 11896, 2017.

      62. Lu, G., Lv, C., Bao, W., Li, F., Zhang, F., Zhang, L., Wang, S., Gao, X., Zhao, D., Wei, W., Xie, H.Y., Antimonene with two-orders-of-magnitude improved stability for high-performance cancer theranostics. Chem. Sci., 10, 4847, 2019.

      63. Yu, J., Wang, X.H., Feng, J., Meng, X., Bu, X., Li, Y., Zhang, N., Wang, P., Antimonene nanoflakes: Extraordinary photoacoustic performance for high-contrast imaging of small volume tumors. Adv. Healthcare Mater., 8, 1900378, 2019.

      64. Tao, W., Ji, X., Zhu, X., Li, L., Wang, J., Zhang, Y., Saw, P.E., Li, W., Kong, N., Islam, M.A., Gan, T., Zeng, X., Zhang, H., Mahmoudi, M., Tearney, G.J., Farokhzad, O.C., Two-dimensional antimonene-based photonic nanomedicine for cancer theranostics. Adv. Mater., 30, 1802061, 2018.

      65. Xue, T., Liang, W., Li, Y., Sun, Y., Xiang, Y., Zhang, Y., Dai, Z., Duo, Y., Wu, L., Qi, K., Shivananju, B.N., Zhang, L., Cui, X., Zhang, H., Bao, Q., Ultrasensitive detection of miRNA with an antimonene-based surface plasmon resonance sensor. Nat. Commun., 10, 28, 2019.

      66. Tang, X., Hu, L., Fan, T., Zhang, L., Zhu, L., Li, H., Liu, H., Liang, J., Wang, K., Li, Z., Ruan, S., Zhang, Y., Fan, D., Chen, W., Zeng, Y., Zhang, H., Robust above-room-temperature ferromagnetism in few-layer antimonene triggered by nonmagnetic adatoms. Adv. Funct. Mater., 29, 1808746, 2019.

      1 *Corresponding author: [email protected]

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