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氧和氮共掺杂有序介孔碳材料增强了 O 还原为 HO 的电化学选择性。

Oxygen and nitrogen co-doped ordered mesoporous carbon materials enhanced the electrochemical selectivity of O reduction to HO.

机构信息

State Key Laboratory of Fine Chemicals, Key Laboratory of Industrial Ecology and Environmental Engineering (MOE), School of Environmental Science and Technology, Dalian University of Technology, Dalian 116024, China.

National Engineering Laboratory for VOCs Pollution Control Material & Technology, University of Chinese Academy of Sciences, Beijing 101408, China.

出版信息

J Colloid Interface Sci. 2020 Mar 7;562:540-549. doi: 10.1016/j.jcis.2019.11.080. Epub 2019 Nov 21.

Abstract

Electrochemical hydrogen peroxide production from two-electron oxygen reduction reaction, a cost-effective, sustainable and reliable method compared with the traditional anthraquinone process, is attracting growing attention. However, it is challenged by the selectivity of electrocatalysts. In this context, nitrogen and oxygen co-doped ordered mesoporous carbon materials have been successfully fabricated. Benefiting from the ordered pore structure, better dispersion behavior and valid doping effect, a high selectivity (~95.00%), good activity and stability toward HO production were achieved. Systematic characterizations like physical adsorption, zeta potential, X-ray photoelectron spectroscopy and density functional theory (DFT) calculation revealed that interactive effects between pyridinic N and functional groups of COOH/COC largely facilitated the desorption of intermediates (*OOH, * represents an unoccupied active site) in turn enhance the selectivity of electrocatalysts toward HO production. Interestingly, HO produced in situ was applied to Electro-Fenton, the formaldehyde mineralization rate was high to about 88.06%. These findings offer a rational chemical design of electrocatalysts toward HO production and pollutant purification.

摘要

与传统蒽醌工艺相比,通过两电子氧还原反应电化学生产过氧化氢是一种具有成本效益、可持续和可靠的方法,因此越来越受到关注。然而,其面临着电催化剂选择性的挑战。在这种情况下,成功制备了氮氧共掺杂有序介孔碳材料。受益于有序的孔结构、更好的分散行为和有效的掺杂效应,该材料在 HO 生产方面表现出高选择性(约 95.00%)、良好的活性和稳定性。物理吸附、动电位、X 射线光电子能谱和密度泛函理论(DFT)计算等系统表征表明,吡啶 N 与 COOH/COC 官能团之间的相互作用极大地促进了中间体(OOH, 代表未占据的活性位)的解吸,从而提高了电催化剂对 HO 生产的选择性。有趣的是,原位生成的 HO 被应用于电芬顿,甲醛的矿化率高达约 88.06%。这些发现为 HO 生产和污染物净化的电催化剂提供了合理的化学设计。

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