Graphene‐Based Sulfur Cathodes and Dual Salt‐Based Sparingly Solvating Electrolytes: A Perfect Marriage for High Performing, Safe, and Long Cycle Life Lithium‐Sulfur Prototype Batteries

Author:

Castillo Julen12ORCID,Soria‐Fernández Asier1ORCID,Rodriguez‐Peña Sergio12,Rikarte Jokin1ORCID,Robles‐Fernández Adrián1ORCID,Aldalur Itziar1ORCID,Cid Rosalía1ORCID,González‐Marcos Jose Antonio2,Carrasco Javier13ORCID,Armand Michel1ORCID,Santiago Alexander1ORCID,Carriazo Daniel13ORCID

Affiliation:

1. Centre for Cooperative Research on Alternative Energies (CIC energiGUNE) Basque Research and Technology Alliance (BRTA) Vitoria‐Gasteiz 01510 Spain

2. University of the Basque Country (UPV/EHU) Barrio Sarriena, s/n Leioa 48940 Spain

3. IKERBASQUE, Basque Foundation for Science Plaza Euskadi 5 Bilbao 48009 Spain

Abstract

AbstractThe growing requirements for electrified  applications entail exploring alternative battery systems. Lithium‐sulfur batteries (LSBs) have emerged as a promising, cost‐effective, and sustainable solution; however, their practical commercialization is impeded by several intrinsic challenges. With the aim of surpassing these challenges, the implementation of a holistic LSB concept is proposed. To this end, the effectiveness of coupling a high‐performing 2D graphene‐based sulfur cathode with a well‐suited sparingly solvating electrolyte (SSE) is reported. The incorporation of bis(fluorosulfonyl)imide (LiFSI) salt to tune sulfolane and 1,1,2,2‐tetrafluoroethyl‐2,2,3,3‐tetrafluoropropylether based SSE enables the formation of a robust and compact lithium fluoride‐rich solid electrolyte interphase. Consequently, the lithium compatibility is improved, achieving a high Coulombic efficiency (CE) of 98.8% in the Li||Cu cells and enabling thin and dense lithium depositions. When combined with a high‐performing 2D graphene‐based sulfur cathode, a symbiotic effect is shown, leading to high discharge capacities, remarkable rate capability (2.5 mAh cm−2 at C/2), enhanced cell stability, and wide temperature applicability. Furthermore, the scalability of this strategy is successfully demonstrated by assembling high‐performing monolayer prototype cells with a total capacity of 93 mAh, notable capacity retention of 70% after 100 cycles, and a high average CE of 99%.

Publisher

Wiley

Subject

General Materials Science,Renewable Energy, Sustainability and the Environment

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