Universiti Teknologi Malaysia Institutional Repository

Phosphoric acid doped composite proton exchange membrane for hydrogen production in medium-temperature copper chloride electrolysis

Kamaroddin, M. F. A. and Sabli, N. and Nia, P. M. and Abdullah, T. A. T. and Abdullah, L. C. and Izhar, S. and Ripin, A. and Ahmad, A. (2020) Phosphoric acid doped composite proton exchange membrane for hydrogen production in medium-temperature copper chloride electrolysis. International Journal of Hydrogen Energy, 45 (42). ISSN 0360-3199

Full text not available from this repository.

Official URL: http://dx.doi.org/10.1016/j.ijhydene.2019.10.030

Abstract

A copper chloride (CuCl) electrolyzer that constitutes of composite proton exchange membrane (PEM) that functions at medium-temperature (>100 °C) is beneficial for rapid electrochemical kinetics, and better in handling fuel pollutants. A synthesized polybenzimidazole (PBI) composite membrane from the addition of ZrO2 followed with phosphoric acid (PA) is suggested to overcome the main issues in CuCl electrolysis, including the copper diffusion and proton conductivity. PBI/ZrP properties improved significantly with enhanced proton conductivity (3 fold of pristine PBI, 50% of Nafion 117), superior thermal stability (>600 °C), good mechanical strength (85.17 MPa), reasonable Cu permeability (7.9 × 10−7) and high ionic exchange capacity (3.2 × 10−3 mol g−1). Hydrogen produced at 0.5 A cm−2 (115 °C) for PBI/ZrP and Nafion 117 was 3.27 cm3 min−1 and 1.85 cm3 min−1, respectively. The CuCl electrolyzer efficiency was ranging from 91 to 97%, thus proven that the hybrid PBI/ZrP membrane can be a promising and cheaper alternative to Nafion membrane.

Item Type:Article
Uncontrolled Keywords:composite membrane, copper chloride electrolysis, hydrogen production
Subjects:T Technology > TP Chemical technology
Divisions:Chemical and Energy Engineering
ID Code:93646
Deposited By: Narimah Nawil
Deposited On:31 Dec 2021 08:28
Last Modified:31 Dec 2021 08:28

Repository Staff Only: item control page