Nanotechnologies in ceramic electrochemical cells

J Cao, Y Ji, Z Shao - Chemical Society Reviews, 2024 - pubs.rsc.org
Although they are emerging technologies for achieving high-efficiency and green and eco-
friendly energy conversion, ceramic electrochemical cells (CECs), ie solid oxide electrolysis …

A review of progress in proton ceramic electrochemical cells: material and structural design, coupled with value-added chemicals production

Y Wang, Y Ling, B Wang, G Zhai, G Yang… - Energy & …, 2023 - pubs.rsc.org
Proton ceramic electrochemical cells (PCECs) have attracted significant attention from
governmental institutions and research societies as an emerging technology for energy …

Lowering the operating temperature of protonic ceramic electrochemical cells to< 450° C

F Liu, H Deng, D Diercks, P Kumar, MHA Jabbar… - Nature Energy, 2023 - nature.com
Protonic ceramic electrochemical cells (PCECs) can be employed for power generation and
sustainable hydrogen production. Lowering the PCEC operating temperature can facilitate …

A real proton‐conductive, robust, and cobalt‐free cathode for proton‐conducting solid oxide fuel cells with exceptional performance

Y Yin, D **‐Induced Nanocomposites with Improved Oxygen Reaction Activity and Durability for Reversible Protonic Ceramic Electrochemical Cell Air Electrodes
Z Du, K Xu, F Zhu, Y Xu, F He, H Gao… - Advanced Functional …, 2024 - Wiley Online Library
Reversible protonic ceramic electrochemical cells (R‐PCECs) are very promising as energy
conversion and storage devices with high efficiency at intermediate temperatures (500–700° …

In-situ exsolution of PrO2− x nanoparticles boost the performance of traditional Pr0. 5Sr0. 5MnO3-δ cathode for proton-conducting solid oxide fuel cells

R Zhou, Y Gu, H Dai, Y Xu, L Bi - Journal of the European Ceramic Society, 2023 - Elsevier
By synthesizing the nominal Pr x Sr 0.5 MnO 3-δ materials (x= 0.5, 0.6, 0.7, 0.8), new Pr 0.5
Sr 0.5 MnO 3-δ (PSM50)+ PrO 2− x composite cathodes for proton-conducting solid oxide …