| Literature DB >> 32646999 |
Y Wu1, B Zhu2,3, M Huang4, L Liu1, Q Shi1, M Akbar4, C Chen5, J Wei6, J F Li6, L R Zheng7, J S Kim8, H B Song2.
Abstract
Tuning a semiconductor to function as a fast proton conductor is an emerging strategy in the rapidly developing field of proton ceramic fuel cells (PCFCs). The key challenge for PCFC researchers is to formulate the proton-conducting electrolyte with conductivity above 0.1 siemens per centimeter at low temperatures (300 to 600°C). Here we present a methodology to design an enhanced proton conductor by means of a Na x CoO2/CeO2 semiconductor heterostructure, in which a field-induced metallic state at the interface accelerates proton transport. We developed a PCFC with an ionic conductivity of 0.30 siemens per centimeter and a power output of 1 watt per square centimeter at 520°C. Through our semiconductor heterostructure approach, our results provide insight into the proton transport mechanism, which may also improve ionic transport in other energy applications.Entities:
Year: 2020 PMID: 32646999 DOI: 10.1126/science.aaz9139
Source DB: PubMed Journal: Science ISSN: 0036-8075 Impact factor: 47.728