Literature DB >> 29693392

Unique Proton Transportation Pathway in a Robust Inorganic Coordination Polymer Leading to Intrinsically High and Sustainable Anhydrous Proton Conductivity.

Daxiang Gui1, Xing Dai1, Zetian Tao2, Tao Zheng1, Xiangxiang Wang1, Mark A Silver1, Jie Shu3, Lanhua Chen1, Yanlong Wang1, Tiantian Zhang3, Jian Xie1, Lin Zou4, Yuanhua Xia4, Jujia Zhang5, Jin Zhang5, Ling Zhao6, Juan Diwu1, Ruhong Zhou1,7, Zhifang Chai1, Shuao Wang1.   

Abstract

Although comprehensive progress has been made in the area of coordination polymer (CP)/metal-organic framework (MOF)-based proton-conducting materials over the past decade, searching for a CP/MOF with stable, intrinsic, high anhydrous proton conductivity that can be directly used as a practical electrolyte in an intermediate-temperature proton-exchange membrane fuel cell assembly for durable power generation remains a substantial challenge. Here, we introduce a new proton-conducting CP, (NH4)3[Zr(H2/3PO4)3] (ZrP), which consists of one-dimensional zirconium phosphate anionic chains and fully ordered charge-balancing NH4+ cations. X-ray crystallography, neutron powder diffraction, and variable-temperature solid-state NMR spectroscopy suggest that protons are disordered within an inherent hydrogen-bonded infinite chain of acid-base pairs (N-H···O-P), leading to a stable anhydrous proton conductivity of 1.45 × 10-3 S·cm-1 at 180 °C, one of the highest values among reported intermediate-temperature proton-conducting materials. First-principles and quantum molecular dynamics simulations were used to directly visualize the unique proton transport pathway involving very efficient proton exchange between NH4+ and phosphate pairs, which is distinct from the common guest encapsulation/dehydration/superprotonic transition mechanisms. ZrP as the electrolyte was further assembled into a H2/O2 fuel cell, which showed a record-high electrical power density of 12 mW·cm-2 at 180 °C among reported cells assembled from crystalline solid electrolytes, as well as a direct methanol fuel cell for the first time to demonstrate real applications. These cells were tested for over 15 h without notable power loss.

Entities:  

Year:  2018        PMID: 29693392     DOI: 10.1021/jacs.8b02598

Source DB:  PubMed          Journal:  J Am Chem Soc        ISSN: 0002-7863            Impact factor:   15.419


  2 in total

1.  Anhydrous proton conductivity of electrospun phosphoric acid-doped PVP-PVDF nanofibers and composite membranes containing MOF fillers.

Authors:  Lian Sun; Quanchao Gu; Honglei Wang; Jinshan Yu; Xingui Zhou
Journal:  RSC Adv       Date:  2021-09-02       Impact factor: 4.036

Review 2.  Properties and Applications of Metal Phosphates and Pyrophosphates as Proton Conductors.

Authors:  Rosario M P Colodrero; Pascual Olivera-Pastor; Aurelio Cabeza; Montse Bazaga-García
Journal:  Materials (Basel)       Date:  2022-02-09       Impact factor: 3.623

  2 in total

北京卡尤迪生物科技股份有限公司 © 2022-2023.