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氟工程自支撑超薄二维氢氧化镍纳米片作为用于析氧和尿素氧化反应的高度稳健且稳定的双功能电催化剂

Fluorine Engineered Self-Supported Ultrathin 2D Nickel Hydroxide Nanosheets as Highly Robust and Stable Bifunctional Electrocatalysts for Oxygen Evolution and Urea Oxidation Reactions.

作者信息

Patil Swati J, Chodankar Nilesh R, Hwang Seung-Kyu, Rama Raju Ganji Seeta, Huh Yun-Suk, Han Young-Kyu

机构信息

Department of Energy and Materials Engineering, Dongguk University-Seoul, Seoul, 100-715, Republic of Korea.

Department of Biological Engineering, NanoBio High-Tech Materials Research Center, Inha University, Incheon, 22212, Republic of Korea.

出版信息

Small. 2022 Feb;18(7):e2103326. doi: 10.1002/smll.202103326. Epub 2021 Dec 10.

Abstract

Developing highly efficient noble-metal-free electrocatalysts with a scalable and environmentally friendly synthesis approach remains a challenge in the field of electrocatalytic water splitting. To overcome this problem, self-supported fluorine-modified 2D ultrathin nickel hydroxide (F-Ni(OH) ) nanosheets (NSs) for the oxygen evolution reaction (OER) and urea oxidation reaction (UOR) are prepared with a scalable and ascendant one-step synthesis route. The enhanced redox activity, electrical conductivity and a great number of exposed active sites of the heterogeneous catalysts improve charge migration for the electrocatalytic reactions. The density of states of the d orbitals of the Ni atoms significantly increases near the Fermi level, thereby indicating that the Ni atoms near the F-dopants promote electrical conduction in the Ni(OH) monolayer. The F-Ni(OH) electrocatalyst exhibits notable OER and UOR activity with onset potentials of 1.43 and 1.16 V versus RHE, respectively required to reach 10 mA cm , which are comparable to those of commercial noble-metal-based electrocatalysts. With RuCo-OH nanospheres, the settled F-Ni(OH) ||RuCo-OH cell requires merely 1.55 and 1.37 V to reach 10 mA cm with superb durability for 24 h in overall water and urea electrolysis, respectively. Overall, high-quality, and efficient noble-metal-free electrocatalysts for overall water and urea electrolysis can be prepared with a simple, scalable, and reproducible preparation method.

摘要

采用可扩展且环境友好的合成方法开发高效的无贵金属电催化剂仍然是电催化水分解领域的一项挑战。为克服这一问题,通过一种可扩展且先进的一步合成路线制备了用于析氧反应(OER)和尿素氧化反应(UOR)的自支撑氟改性二维超薄氢氧化镍(F-Ni(OH)₂)纳米片(NSs)。非均相催化剂增强的氧化还原活性、电导率以及大量暴露的活性位点改善了电催化反应的电荷迁移。Ni原子d轨道的态密度在费米能级附近显著增加,这表明靠近F掺杂剂的Ni原子促进了Ni(OH)₂单层中的导电。F-Ni(OH)₂电催化剂表现出显著的OER和UOR活性,相对于可逆氢电极(RHE),达到10 mA cm⁻²所需的起始电位分别为1.43和1.16 V,这与商业贵金属基电催化剂相当。与RuCo-OH纳米球搭配,组装的F-Ni(OH)₂||RuCo-OH电池在全水电解和尿素电解中分别仅需1.55和1.37 V就能达到10 mA cm⁻²,并且具有24小时的出色耐久性。总体而言,可通过简单、可扩展且可重复的制备方法制备用于全水电解和尿素电解的高质量、高效无贵金属电催化剂。

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