Wee Jae-Hyung, Kim Chang Hyo, Lee Hun-Su, Choi Go Bong, Kim Doo-Won, Yang Cheol-Min, Kim Yoong Ahm
Institute of Advanced Composite Materials, Korea Institute of Science and Technology (KIST), 92 Chudong-ro, Bongdong-eup, Wanju-gun, Jeollabuk-do, 55324, Republic of Korea.
Alan G. MacDiarmid Energy Research Institute, Department of Polymer Engineering, Graduated School & School of Polymer Science and Engineering, Chonnam National University, 77 Yongbong-ro, Buk-gu, Gwangju, 61186, Republic of Korea.
Sci Rep. 2019 Dec 27;9(1):20170. doi: 10.1038/s41598-019-56770-8.
Nitrogen (N)-doped nanostructured carbons have been actively examined as promising alternatives for precious-metal catalysts in various electrochemical energy generation systems. Herein, an effective approach for synthesizing N-doped single-walled carbon nanohorns (SWNHs) with highly electrocatalytic active sites via controlled oxidation followed by N plasma is presented. Nanosized holes were created on the conical tips and sidewalls of SWNHs under mild oxidation, and subsequently, the edges of the holes were easily decorated with N atoms. The N atoms were present preferentially in a pyridinic configuration along the edges of the nanosized holes without significant structural change of the SWNHs. The enriched edges decorated with the pyridinic-N atoms at the atomic scale increased the number of active sites for the oxygen reduction reaction, and the inherent spherical three-dimensional feature of the SWNHs provided good electrical conductivity and excellent mass transport. We demonstrated an effective method for promoting the electrocatalytic active sites within N-doped SWNHs by combining defect engineering with the preferential formation of N atoms having a specific configuration.
氮(N)掺杂的纳米结构碳已被积极研究,作为各种电化学能量产生系统中贵金属催化剂的有前途的替代品。在此,提出了一种通过可控氧化随后进行氮等离子体处理来合成具有高电催化活性位点的氮掺杂单壁碳纳米角(SWNHs)的有效方法。在温和氧化条件下,SWNHs的锥形尖端和侧壁上产生了纳米尺寸的孔洞,随后,孔洞边缘很容易被氮原子修饰。氮原子优先以吡啶型结构沿纳米尺寸孔洞的边缘存在,而SWNHs的结构没有明显变化。在原子尺度上用吡啶型氮原子修饰的富集边缘增加了氧还原反应的活性位点数量,并且SWNHs固有的球形三维特征提供了良好的导电性和优异的质量传输性能。我们展示了一种通过将缺陷工程与具有特定构型的氮原子的优先形成相结合来促进氮掺杂SWNHs内电催化活性位点的有效方法。