Manna Narugopal, Ayasha Nadeema, Singh Santosh K, Kurungot Sreekumar
Physical & Materials Chemistry Division, CSIR-National Chemical Laboratory Pune Maharastra India
Academy of Scientific and Innovative Research, Postal Staff College Nehru Nagar Ghaziabad Uttar Pradesh-201002 India.
Nanoscale Adv. 2020 Mar 3;2(4):1709-1717. doi: 10.1039/c9na00808j. eCollection 2020 Apr 15.
Three dimensional (3D) porous carbon materials are highly desirable for electrochemical applications owing to their high surface area and porosity. Uniformly distributed porosity in the 3D architecture of carbon support materials allows reactant molecules to access more electrochemically active centres and simultaneously facilitate removal of the product formed during electrochemical reactions. Herein, we have prepared a nitrogen-doped entangled graphene framework (NEGF), decorated with NiFe-LDH nanostructures by an solvothermal method followed by freeze-drying at high vacuum pressure and low temperature. The freeze-drying method helped to prevent the restacking of the graphene sheets and the formation of a high surface area nitrogen-doped entangled graphene framework (NEGF) supported NiFe-LDHs. The incorporation of the NEGF has significantly reduced the overpotential for the electrochemical oxygen evolution reaction (OER) in 1 M KOH solution. This corresponds to an overpotential reduction from 340 mV for NiFe-LDHs to 290 mV for NiFe-LDH/NEGF to reach the benchmark current density of 10 mA cm. The preparation of the catalyst is conceived through a low-temperature scalable process.
三维(3D)多孔碳材料因其高表面积和孔隙率而在电化学应用中备受青睐。碳载体材料三维结构中均匀分布的孔隙率使反应物分子能够接触到更多的电化学活性中心,同时有助于去除电化学反应过程中形成的产物。在此,我们通过溶剂热法制备了一种氮掺杂的缠结石墨烯框架(NEGF),并用NiFe-LDH纳米结构进行修饰,随后在高真空压力和低温下进行冷冻干燥。冷冻干燥法有助于防止石墨烯片层的重新堆叠,并形成具有高表面积的氮掺杂缠结石墨烯框架(NEGF)负载的NiFe-LDHs。NEGF的引入显著降低了1 M KOH溶液中电化学析氧反应(OER)的过电位。这对应于过电位从NiFe-LDHs的340 mV降低到NiFe-LDH/NEGF的290 mV,以达到10 mA cm的基准电流密度。该催化剂的制备是通过低温可扩展工艺实现的。