Unraveling the Mechanisms of Zirconium Metal–Organic Frameworks‐Based Mixed‐Matrix Membranes Preventing Polysulfide Shuttling

Author:

Lu Wenqing1,Pang Zhenfeng2,Lamaire Aran3,Liu Fu45,Dai Shan1,Pinto Moisés L.6,Demir‐Cakan Rezan7,Ooi Tan Kong2,Van Speybroeck Veronique3,Pimenta Vanessa1ORCID,Serre Christian1ORCID

Affiliation:

1. Institut des Matériaux Poreux de Paris ESPCI Paris, Ecole Normale Supérieure, CNRS, PSL University 75005 Paris France

2. Laboratoire des Biomolécules, LBM Département de Chimie École Normale Supérieure, PSL University Sorbonne Université, CNRS 75005 Paris France

3. Center for Molecular Modeling (CMM) Ghent University Technologiepark‐Zwijnaarde 46 9052 Zwijnaarde Belgium

4. Collège de France, Chimie du Solide et de l’Energie—UMR 8260 CNRS 75005 Paris France

5. Réseau sur le Stockage Electrochimique de l’Energie (RS2E)—FR, CNRS 3459 Amiens France

6. CERENA–Centro de Recursos Naturais e Ambiente, Departamento de Engenharia Química, Instituto Superior Técnico Universidade de Lisboa Av. Rovisco Pais, 1 1049‐001 Lisboa Portugal

7. Department of Chemical Engineering Gebze Technical University 41400 Kocaeli Turkey

Abstract

Lithium–sulfur batteries are considered as promising candidates for next‐generation energy storage devices for grid applications due to their high theoretical energy density. However, the inevitable shuttle effect of lithium polysulfides and/or dendrite growth of Li metal anodes hinder their commercial viability. Herein, the microporous Zr fumarate metal–organic framework (MOF)‐801(Zr) is considered to produce thin (≈15.6 μm, ≈1 mg cm2) mixed‐matrix membranes (MMM) as a novel interlayer for Li–S batteries. It is found that the MOF‐801(Zr)/C/PVDF‐HFP composite interlayer facilitates Li+ ions diffusion, and anchors polysulfides while promoting their redox conversion effectively. It is demonstrated that MOF‐801 effectively trapped polysulfides at the cathode side, and confirmed for the first time the nature of the interaction between the adsorbed polysulfides and the host framework, through a combination of solid‐state nuclear magnetic resonance and molecular dynamics simulations. The incorporation of MOF‐801(Zr)/C/PVDF‐HFP MMM interlayer results in a notable enhancement in the initial capacity of Li–S batteries up to 1110 mA h g−1. Moreover, even after 50 cycles, a specific capacity of 880 mA h g−1 is delivered.

Funder

China Sponsorship Council

Agence Nationale de la Recherche

Publisher

Wiley

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