Lovisa Byström, Mikhail Vagin*, Nataliia Smyk, Penghui Ding, Hamid Ghorbani Shiraz, Olena Sevastyanova, Martin Lawoko, Gunnar Henriksson, Maciej Gryszel, Renee Kroon, Mohammad Javad Jafari, Thomas Ederth, Magnus Berggren, Pawel Jerzy Wojcik, Viktor Gueskine and Reverant Crispin,
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This process occurs in a membrane electrolyzer, where the cathode catalyst dictates ORR selectivity: a carbon paper cathode modified by the conducting polymer poly(3,4-ethylenedioxythiophene) (PEDOT) favors hydrogen peroxide formation via a 2-electron pathway, while a platinum-modified carbon paper cathode facilitates full oxygen reduction to water via a 4-electron pathway. When applying a cell voltage of 0.7 V (a geometrical current density of 0.04 mA cm<sup>–2</sup>), the air-saturated catholyte had an 8-fold decrease in dissolved oxygen, which corresponded to 68% faradaic efficiency and an electrical energy consumption of 0.0233 W hour l<sup>–1</sup>. Removing the low molecular weight lignosulfonate (<3.5 kDa) via dialysis minimizes membrane crossover but also reduces oxygen consumption rates. The oxidation process preserves the lignosulfonate backbone while enriching its quinone content, offering a novel, energy-efficient approach to biomass valorization. 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引用次数: 0
摘要
本研究探讨了配对电解,利用氧还原反应(ORR)和工业相关的木质素磺酸氧化来增强可持续的电化学过程。阳极反应是由木质素磺酸盐直接氧化驱动的,木质素磺酸盐是一种丰富的生物聚合物,来源于亚硫酸盐制浆,在裸露的石墨电极上,消除了对昂贵催化剂的需要。这一过程发生在膜电解槽中,阴极催化剂决定了ORR的选择性:由导电聚合物聚(3,4-乙烯二氧噻吩)(PEDOT)修饰的碳纸阴极有利于通过2电子途径形成过氧化氢,而铂修饰的碳纸阴极有利于通过4电子途径将氧还原为水。当电池电压为0.7 V(几何电流密度为0.04 mA cm-2)时,空气饱和阴极电解质的溶解氧减少了8倍,法拉第效率为68%,电能消耗为0.0233 Wh - 1。通过透析去除低分子量木质素磺酸盐(<3.5 kDa)可以最大限度地减少膜交叉,但也可以降低耗氧量。氧化过程保留了木质素磺酸盐骨架,同时丰富了其醌含量,为生物质增值提供了一种新颖、节能的方法。通过将木质素磺酸氧化与ORR相结合,本研究提出了一种具有成本效益和可持续性的替代传统阳极工艺的方法,在绿色过氧化氢生产和生物基电化学系统中具有潜在的应用前景。该报告展示了一种新的可持续途径,即利用电和水将脱氧和木质素磺酸盐增值结合起来。
Catalyst-Free Lignosulfonate Electro-Oxidation for Oxygen Management via Paired Electrolysis
This study explores paired electrolysis, leveraging the oxygen reduction reaction (ORR) and industry-relevant lignosulfonate oxidation to enhance sustainable electrochemical processes. The anode reaction is driven by the direct oxidation of lignosulfonate, an abundant biopolymer derived from sulfite pulping, on bare graphite electrodes, eliminating the need for costly catalysts. This process occurs in a membrane electrolyzer, where the cathode catalyst dictates ORR selectivity: a carbon paper cathode modified by the conducting polymer poly(3,4-ethylenedioxythiophene) (PEDOT) favors hydrogen peroxide formation via a 2-electron pathway, while a platinum-modified carbon paper cathode facilitates full oxygen reduction to water via a 4-electron pathway. When applying a cell voltage of 0.7 V (a geometrical current density of 0.04 mA cm–2), the air-saturated catholyte had an 8-fold decrease in dissolved oxygen, which corresponded to 68% faradaic efficiency and an electrical energy consumption of 0.0233 W hour l–1. Removing the low molecular weight lignosulfonate (<3.5 kDa) via dialysis minimizes membrane crossover but also reduces oxygen consumption rates. The oxidation process preserves the lignosulfonate backbone while enriching its quinone content, offering a novel, energy-efficient approach to biomass valorization. By integrating lignosulfonate oxidation with ORR, this work presents a cost-effective and sustainable alternative to conventional anodic processes, with potential applications in green hydrogen peroxide production and biobased electrochemical systems.
The report shows a new sustainable route to couple deoxygenation and lignosulfonate valorization using electricity and water.
期刊介绍:
ACS Sustainable Chemistry & Engineering is a prestigious weekly peer-reviewed scientific journal published by the American Chemical Society. Dedicated to advancing the principles of green chemistry and green engineering, it covers a wide array of research topics including green chemistry, green engineering, biomass, alternative energy, and life cycle assessment.
The journal welcomes submissions in various formats, including Letters, Articles, Features, and Perspectives (Reviews), that address the challenges of sustainability in the chemical enterprise and contribute to the advancement of sustainable practices. Join us in shaping the future of sustainable chemistry and engineering.