Department of Chemical Engineering, National Institute of Technology, Tiruchirappalli, Tamil Nadu 620015, India.
Department of Chemical Engineering, National Institute of Technology, Tiruchirappalli, Tamil Nadu 620015, India.
Bioresour Technol. 2021 Jan;320(Pt A):124284. doi: 10.1016/j.biortech.2020.124284. Epub 2020 Oct 20.
Biohydrogen production in Microbial Electrolysis Cell (MEC) had inspired the researchers to overcome the challenges associated towards sustainability. Despite microbial community and various substrates, economical cathode catalyst development is most significant factor for enhancing hydrogen production in the MEC. Hence, in this study, the performance of MEC was investigated with a sugar industry effluent (COD 4200 ± 20 mg/L) with graphite anode and modified Nickel foam (NF) cathode. Nickel molybdate (NiMoO) coated NF achieved a higher hydrogen production rate 0.12 ± 0.01 L.LD as compared to control under favorable conditions. Electrochemical characterizations demonstrated that the improved catalytic activity of novel nanocatalyst with lower impedance favoring faster hydrogen evolution kinetics. The MEC with the novel catalyst performed with 58.2% coloumbic efficiency, 20.36% cathodic hydrogen recovery, 11.96% overall hydrogen recovery and 54.38% COD removal efficiency for a 250 mL substrate during 5 days' batch cycle. Hence, the potentiality of modified cathode was established with the real time industrial effluent highlighting the waste to wealth bio-electrochemical technology.
微生物电解池(MEC)中的生物制氢激发了研究人员克服可持续性相关挑战。尽管微生物群落和各种底物不同,但经济阴极催化剂的开发是提高 MEC 中制氢效率的最重要因素。因此,在这项研究中,使用糖业废水(COD4200±20mg/L)在石墨阳极和改性镍泡沫(NF)阴极的条件下对 MEC 的性能进行了研究。与对照相比,NiMoO 涂层 NF 在有利条件下实现了更高的氢气产生速率 0.12±0.01 L.LD。电化学特性表明,新型纳米催化剂具有较低的阻抗和更好的催化活性,有利于更快的析氢动力学。在 5 天的批处理循环中,新型催化剂的 MEC 在 250mL 基质中具有 58.2%的库仑效率、20.36%的阴极氢气回收、11.96%的总氢气回收和 54.38%的 COD 去除效率。因此,通过实时工业废水处理,改性阴极的潜力得到了证实,强调了废物到财富的生物电化学技术。