Design of Bi-functional mixed oxide electrodes for selective oxidative C–C cleavage of glycerol to formate and synchronized green hydrogen production†

IF 5 3区 材料科学 Q2 CHEMISTRY, PHYSICAL Sustainable Energy & Fuels Pub Date : 2024-05-22 DOI:10.1039/D4SE00434E
Arindam Saha, Vasantharadevi Murugiah, Ravi Ranjan, Inderjeet Chauhan, Kshirodra Kumar Patra, Himanshu Bajpai, Avisekh Saha and Chinnakonda S. Gopinath
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Abstract

Alkaline water electrolysis is a mature method to produce green hydrogen; however, it suffers from significantly high cost as high overpotentials are required for the oxygen evolution reaction (OER). However, the OER could be avoided altogether by replacing it with kinetically favorable oxidation of abundantly available feedstock molecules at a significantly low potential to value-added product(s) together with green hydrogen generation. This is a potential method to address the high cost of green hydrogen production while converting waste to wealth. Herein, we report green, template-free hydrothermal synthesis of an electrochemically active NiCoMn mixed oxide (NCMO) electrocatalyst with multiple sites, porous structure, large surface area, and nanoneedle (NN) morphology deposited directly over Ni foam (NF). Sustainable electrocatalytic performance was demonstrated for 120 h in 0.2 M alkaline glycerol using chronoamperometry and chronopotentiometry. Highly selective formate production demonstrated an exclusive C–C cleavage with the present catalyst system. Oxides of individual metal-ions (Ni, Co, and Mn) and their bimetallic combination (NiCo, NiMn, and CoMn) exhibited lower activity and product selectivity than the trimetallic NCMO electrocatalyst. The membrane-free two-electrode electrolyzer setup with NCMO/NF at both the anode and cathode (NCMO/NF‖NCMO/NF) requires 1.63 V to accomplish 100 mA cm−2 with 0.2 M glycerol, which is 296 mV less than that of 1 M KOH solution. High faradaic efficiency was observed for hydrogen (98%) with highly selective formate (90%) production. Electrocatalytic formate generation from an alkaline glycerol solution with NCMO is an energy-efficient and promising approach that also supplies carbon-negative green H2.

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设计用于甘油选择性氧化 C-C 裂解为甲酸酯和同步绿色制氢的双功能氧化物电极
碱性水电解是一种生产绿色氢气的成熟方法,但由于氧进化反应(OER)的过电位较高,因此成本明显较高。不过,可以完全避免氧进化反应,而代之以在明显低电位下对大量可获得的原料分子进行动力学有利的氧化,从而在生产绿色氢气的同时生产出增值产品。这是一种解决绿色制氢成本因素的潜在方法,同时还能变废为宝。在此,我们报告了一种绿色、无模板水热法合成电化学活性镍钴锰氧化物(NCMO)催化剂的方法,该催化剂具有多位点、多孔、高比表面积、沉积在镍泡沫(NF)上的纳米针(NNs)形态。在 0.2 M 碱性甘油中,通过计时器和计时器电位计进行了 120 小时的试验,证明了该催化剂的可持续电催化性能。高选择性甲酸酯的生产表明,本催化剂系统只进行 C-C 裂解。与三金属 NCMO 电催化剂相比,单个金属离子(镍、钴、锰)的氧化物及其双金属组合(镍钴、镍锰、钴锰)表现出较低的活性和产品选择性。在阳极和阴极均使用 NCMO/NF 的无膜双电极电解槽设置(NCMO/NF || NCMO/NF)中,使用 0.2 M 甘油达到 100 mA/cm2 的电流需要 1.63 V,比 1 M KOH 溶液低 296 mV。氢气的法拉第效率(98%)和甲酸盐生成的选择性(90%)都很高。利用 NCMO 从碱性甘油溶液中电催化生成甲酸盐是一种高效节能、前景广阔的方法,同时还能提供负碳绿色 H2。
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来源期刊
Sustainable Energy & Fuels
Sustainable Energy & Fuels Energy-Energy Engineering and Power Technology
CiteScore
10.00
自引率
3.60%
发文量
394
期刊介绍: Sustainable Energy & Fuels will publish research that contributes to the development of sustainable energy technologies with a particular emphasis on new and next-generation technologies.
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