Proton-Conducting Ceramic Membranes for the Production of Hydrogen via Decarbonized Heat: Overview and Prospects

Hydrogen Pub Date : 2023-10-13 DOI:10.3390/hydrogen4040050
Maria Giovanna Buonomenna
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Abstract

Proton-conducting ceramic membranes show high hydrogen ion conductivity in the temperature range of 300–700 °C. They are attracting significant attention due to their relevant characteristics compared to both higher-temperature oxygen ion-conducting ceramic membranes and lower-temperature proton-conducting polymers. The aim of this review is to integrate the fundamentals of proton-conducting ceramic membranes with two of their relevant applications, i.e., membrane reactors (PCMRs) for methane steam reforming (SMR) and electrolysis (PCEC). Both applications facilitate the production of pure H2 in the logic of process intensification via decarbonized heat. Firstly, an overview of various types of hydrogen production is given. The fundamentals of proton-conducting ceramic membranes and their applications in PCMRs for SMR and reversible PCEC (RePCEC), respectively, are given. In particular, RePCECs are of particular interest when renewable power generation exceeds demand because the excess electrical energy is converted to chemical energy in the electrolysis cell mode, therefore representing an appealing solution for energy conversion and grid-scale storage.
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脱碳热制氢用质子传导陶瓷膜:综述与展望
质子导电陶瓷膜在300 ~ 700℃温度范围内表现出较高的氢离子导电性。与高温氧离子导电陶瓷膜和低温质子导电聚合物相比,它们的相关特性引起了人们的广泛关注。本文综述了质子导电陶瓷膜的基本原理及其在甲烷蒸汽重整(SMR)和电解(PCEC)中的两种相关应用。这两种应用都促进了通过脱碳热的过程强化逻辑中纯H2的生产。首先,概述了各种类型的制氢。介绍了质子导电陶瓷膜的基本原理及其在SMR和可逆PCEC (RePCEC)中的应用。特别是,当可再生能源发电超过需求时,RePCECs特别感兴趣,因为多余的电能在电解电池模式下转化为化学能,因此代表了一种有吸引力的能量转换和电网规模存储解决方案。
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