School of Pharmaceutical Sciences (Shenzhen) Sun Yat-sen University Guangzhou 510275 P. R. China.
Center for Nanomedicine and Department of Anesthesiology Brigham and Women's Hospital Harvard Medical School Boston MA 02115 USA.
Adv Sci (Weinh). 2021 May 2;8(12):2001801. doi: 10.1002/advs.202001801. eCollection 2021 Jun.
Neighboring carbon and sandwiched between non-metals and metals in the periodic table of the elements, boron is one of the most chemically and physically versatile elements, and can be manipulated to form dimensionally low planar structures (borophene) with intriguing properties. Herein, the theoretical research and experimental developments in the synthesis of borophene, as well as its excellent properties and application in many fields, are reviewed. The decade-long effort toward understanding the size-dependent structures of boron clusters and the theory-directed synthesis of borophene, including bottom-up approaches based on different foundations, as well as up-down approaches with different exfoliation modes, and the key factors influencing the synthetic effects, are comprehensively summarized. Owing to its excellent chemical, electronic, mechanical, and thermal properties, borophene has shown great promise in supercapacitor, battery, hydrogen-storage, and biomedical applications. Furthermore, borophene nanoplatforms used in various biomedical applications, such as bioimaging, drug delivery, and photonic therapy, are highlighted. Finally, research progress, challenges, and perspectives for the future development of borophene in large-scale production and other prospective applications are discussed.
硼位于元素周期表中碳的相邻位置,夹在非金属和金属之间,是化学和物理性质最具多样性的元素之一,可以被操纵形成具有有趣性质的低维平面结构(硼烯)。本文综述了硼烯的合成、优异性能及其在许多领域的应用的理论研究和实验进展。十年来,人们一直致力于理解硼团簇的尺寸依赖性结构和理论指导的硼烯合成,包括基于不同基础的自下而上方法以及具有不同剥离模式的上下方法,以及影响合成效果的关键因素。由于其优异的化学、电子、机械和热性能,硼烯在超级电容器、电池、储氢和生物医学应用方面显示出巨大的应用前景。此外,还重点介绍了用于各种生物医学应用的硼烯纳米平台,如生物成像、药物传递和光热治疗。最后,讨论了硼烯在大规模生产和其他预期应用方面的未来发展的研究进展、挑战和前景。