Jin Xiaoyan, Gu Tae-Ha, Kwon Nam Hee, Hwang Seong-Ju
Department of Materials Science and Engineering, College of Engineering, Yonsei University, Seoul, 03722, Republic of Korea.
Department of Chemistry and Nanoscience, College of Natural Science, Ewha Womans University, Seoul, 03760, Republic of Korea.
Adv Mater. 2021 Nov;33(47):e2005922. doi: 10.1002/adma.202005922. Epub 2021 Apr 23.
2D nanostructured materials, including inorganic and graphene nanosheets, have evoked plenty of scientific research activity due to their intriguing properties and excellent functionalities. The complementary advantages and common 2D crystal shapes of inorganic and graphene nanosheets render their homogenous mixtures powerful building blocks for novel high-performance functional hybrid materials. The nanometer-level thickness of 2D inorganic/graphene nanosheets allows the achievement of unusually strong electronic couplings between sheets, leading to a remarkable improvement in preexisting functionalities and the creation of unexpected properties. The synergetic merits of atomically coupled 2D inorganic-graphene nanosheets are presented here in the exploration of novel heterogeneous functional materials, with an emphasis on their critical roles as hybridization building blocks, interstratified sheets, additives, substrates, and deposited monolayers. The great flexibility and controllability of the elemental compositions, defect structures, and surface natures of inorganic-graphene nanosheets provide valuable opportunities for exploring high-performance nanohybrids applicable as electrodes for supercapacitors and rechargeable batteries, electrocatalysts, photocatalysts, and water purification agents, to give some examples. An outlook on future research perspectives for the exploitation of emerging 2D nanosheet-based hybrid materials is also presented along with novel synthetic strategies to maximize the synergetic advantage of atomically mixed 2D inorganic-graphene nanosheets.
二维纳米结构材料,包括无机纳米片和石墨烯纳米片,因其引人入胜的性质和优异的功能引发了大量的科学研究活动。无机纳米片和石墨烯纳米片的互补优势以及共同的二维晶体形状,使其均匀混合物成为新型高性能功能混合材料的强大构建单元。二维无机/石墨烯纳米片的纳米级厚度使得片层之间能够实现异常强的电子耦合,从而显著改善原有功能并产生意想不到的性质。本文展示了原子耦合的二维无机 - 石墨烯纳米片的协同优势,用于探索新型异质功能材料,重点介绍了它们作为杂化构建单元、层间片层、添加剂、基底和沉积单分子层的关键作用。无机 - 石墨烯纳米片在元素组成、缺陷结构和表面性质方面具有极大的灵活性和可控性,为探索适用于超级电容器和可充电电池电极、电催化剂、光催化剂和水净化剂等的高性能纳米复合材料提供了宝贵机会。此外,还展望了利用新兴的基于二维纳米片的混合材料的未来研究前景,并介绍了一些新颖的合成策略,以最大限度地发挥原子混合的二维无机 - 石墨烯纳米片的协同优势。