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    氮硫共掺杂生物质衍生碳的制备及其析氧性能

    Rational design of N, S co-doped biomass-derived carbon for high-efficiency oxygen evolution reaction

    • 摘要: 全球能源问题愈发严峻,氢能源战略地位日益凸显。电解水制氢被认为是最有前景的获氢途径,但由于其析氢反应和析氧反应的反应动力学缓慢,导致实际生产中电解效率低且能耗高,故迫切需要开发高效且成本低廉的电催化剂。为此,以资源丰富的废弃榴莲壳为原料,在实现废弃生物质再利用的同时通过低温掺杂、高温碳化的方式制备了氮硫共掺杂榴莲壳衍生的生物质碳(NS-DC)。得益于氮、硫双杂原子的掺杂,碳材料导电能力与活性缺陷位点数量得到了良好平衡,使得NS-DC的电催化性能得到明显提升。作为电解水析氧反应催化剂,NS-DC达到10 mA·cm−2的电流密度仅需458 mV的较低过电位,塔菲尔斜率为92 mV·dec−1,具有良好的电荷转移动力学,且具有优良的稳定性。NS-DC的成功制备不仅证实了废弃生物质资源化利用的可行性,也为双杂原子掺杂调控生物质碳基材料的结构与性能提供了新思路。

       

      Abstract: The global energy situation is becoming increasingly severe, and the strategic importance of hydrogen is becoming more pronounced. Water splitting for hydrogen production is considered the most promising method for obtaining hydrogen. However, the slow reaction kinetics of both the hydrogen evolution reaction and the oxygen evolution reaction result in low electrolysis efficiency and high energy consumption in actual production. It is urgent to develop efficient and cost-effective electrocatalysts consequently. Herein, the resource-rich waste durian shells were utilized as raw materials, and nitrogen and sulfur co-doped durian shell-derived biomass carbon (NS-DC) was prepared through low-temperature doping and high-temperature carbonization, thereby achieving the re-utilization of waste biomass. Attributed to the dual doping of nitrogen and sulfur heteroatoms, the electrical conductivity of the carbon materials and the number of active defect sites achieved a good balance, NS-DC showed a significant enhancement of the electrocatalytic performance. As a catalyst for the oxygen evolution reaction, NS-DC achieved a current density of 10 mA·cm−2 with a low overpotential of only 458 mV, excellent stability, and a Tafel slope of 92 mV·dec−1, which demonstrated extraordinary charge transfer kinetics. The successful preparation of NS-DC not only confirms the feasibility of resource utilization of waste biomass, but provides new insights for the dual heteroatom doping regulation of the structure and properties of biomass-based carbon materials.

       

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