Journal of Materials Science · 2019 · 238 citations · 122 references
Proton‑conducting ceramics are sought for energy conversion, sensors, and membranes, especially at low temperatures where distinct temperature zones correspond to different dominant proton‑transfer mechanisms. This review surveys recent advances in low‑temperature proton‑conducting ceramics operating between 25 °C and 400 °C. It examines how crystal structure, microstructure, and fabrication methods influence proton transport—particularly interfacial conduction—and discusses strategies to improve conductivity. The review concludes that LT‑PCCs hold promise for low‑temperature solid‑oxide fuel cells, hydrogen‑separation membranes, and nuclear‑industry applications such as off‑gas capture and isotope separation.
Proton-conducting ceramics (PCCs) are of considerable interest for use in energy conversion and storage applications, electrochemical sensors, and separation membranes. PCCs that combine performance, efficiency, stability, and an ability to operate at low temperatures are particularly attractive. This review summarizes the recent progress made in the development of low-temperature proton-conducting ceramics (LT-PCCs), which are defined as operating in the temperature range of 25–400 °C. The structure of these ceramic materials, the characteristics of proton transport mechanisms, and the potential applications for LT-PCCs will be summarized with an emphasis on protonic conduction occurring at interfaces. Three temperature zones are defined in the LT-PCC operating regime based on the predominant proton transfer mechanism occurring in each zone. The variation in material properties, such as crystal structure, conductivity, microstructure, fabrication methods required to achieve the requisite grain size distribution, along with typical strategies pursued to enhance the proton conduction, is addressed. Finally, a perspective regarding applications of these materials to low-temperature solid oxide fuel cells, hydrogen separation membranes, and emerging areas in the nuclear industry including off-gas capture and isotopic separations is presented.
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