Park Jae Hui, Oh Yun Ji, Park Dong Yoon, Lee Joonsik, Park Jae Seo, Park Chong Rae, Kim Jae Ho, Kim Taehoon, Yang Seung Jae
Advanced Nanohybrids Laboratory, Department of Chemistry and Chemical Engineering, Education and Research Center for Smart Energy and Materials, Inha University, Incheon, 22212, Republic of Korea.
Carbon Nanomaterials Design Laboratory, Research Institute of Advanced Materials, Department of Materials Science and Engineering, Seoul National University, Seoul, 08826, Republic of Korea.
Adv Sci (Weinh). 2021 Nov;8(22):e2102718. doi: 10.1002/advs.202102718. Epub 2021 Sep 30.
It is of importance to explore a new carbon nanomaterial possessing vital functions to fulfill the high standards for practical achievement of the electromagnetic (EM) barrier for blocking EM waves and the electrochemical (EC) barrier as a functional separator for EC energy storage. Herein, facile synthesis of a new class of carbon nanostructures, which consist of interconnected N-doped graphitic carbon nanocubes partially embedded by nickel nanoparticles, is described. The hollow interior of graphitic nanocube induces internal reflection of EM waves and confines active materials of EC energy storage. Nitrogen functionalities implanted in graphitic structure enhance electrical conductivity as well as improve chemical interaction with active materials. Furthermore, nickel nanoparticles in graphitic nanocube function as an EM wave-absorbing material and an electrocatalyst for EC energy storage. Through comprehensive assessments, remarkable performances originating from distinctive nanostructures give new insights into structural design for the carbon nanostructure-based high-performance EM and EC barriers.
探索一种具有重要功能的新型碳纳米材料对于满足实际实现用于阻挡电磁波的电磁(EM)屏障以及作为用于电化学(EC)能量存储的功能分离器的电化学(EC)屏障的高标准至关重要。在此,描述了一类新型碳纳米结构的简便合成方法,该结构由部分被镍纳米颗粒嵌入的相互连接的氮掺杂石墨碳纳米立方体组成。石墨纳米立方体的中空内部引起电磁波的内部反射,并限制了EC能量存储的活性材料。植入石墨结构中的氮官能团增强了电导率,并改善了与活性材料的化学相互作用。此外,石墨纳米立方体中的镍纳米颗粒用作电磁波吸收材料和用于EC能量存储的电催化剂。通过综合评估,源自独特纳米结构的卓越性能为基于碳纳米结构的高性能EM和EC屏障的结构设计提供了新的见解。