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二维碳化磷(β-PC)作为锂硫电池的高效无金属电催化剂:第一性原理研究

Two-dimensional phosphorus carbides (β-PC) as highly efficient metal-free electrocatalysts for lithium-sulfur batteries: a first-principles study.

作者信息

Wang Junru, Liu Zhichao, Zhao Yinchang, Dai Zhenhong, Hua Juan, Zhao Mingwen

机构信息

Department of Physics, Yantai University, Yantai 264005, Shandong, China.

School of Physics & State Key Laboratory of Crystal Materials, Shandong University, Jinan 250100, Shandong, China.

出版信息

Phys Chem Chem Phys. 2024 Aug 14;26(32):21642-21652. doi: 10.1039/d4cp01881h.

DOI:10.1039/d4cp01881h
PMID:39087322
Abstract

Li-S batteries are considered as the next-generation batteries due to their exceptional theoretical capacity. However, their practical application is hampered by the shuttling effects of lithium polysulfides (LiPSs) and the sluggish LiS decomposition, particularly the slow conversion from LiS to LiS. Addressing these challenges, the quest for effective catalysts that can accelerate the conversion of LiPSs and enhance the performance of Li-S batteries is crucial. In this study, we explored the electrocatalytic activity of two-dimensional phosphorus carbides (β-PC and β-PC) in Li-S batteries based on first-principles calculations. Our findings reveal that these materials demonstrate optimal binding strengths (ranging from 1.09 to 1.83 eV) with long-chain LiPSs, effectively preventing them from dissolving into the electrolyte. Additionally, they show remarkable catalytic activity during the sulfur redox reaction (SRR), with Δ being only 0.37 eV for β-PC and 0.13 eV for β-PC. The low energy barrier induced by β-PC enhances ion migration barrier and significantly expedites the charge/discharge cycles of Li-S batteries. Furthermore, we investigated the conversion dynamics of LiS to LiS, employing the computational lithium electrode (CLE) model. The excellent performance in these aspects underscores the potential of these materials as electrocatalysts for Li-S batteries, paving the way for advanced high-efficiency energy storage solutions.

摘要

锂硫电池因其卓越的理论容量而被视为下一代电池。然而,多硫化锂(LiPSs)的穿梭效应和缓慢的LiS分解,特别是从LiS到LiS的缓慢转化,阻碍了它们的实际应用。为应对这些挑战,寻找能够加速LiPSs转化并提高锂硫电池性能的有效催化剂至关重要。在本研究中,我们基于第一性原理计算探索了二维碳化物(β-PC和β-PC)在锂硫电池中的电催化活性。我们的研究结果表明,这些材料与长链LiPSs表现出最佳结合强度(范围为1.09至1.83 eV),有效防止它们溶解到电解质中。此外,它们在硫氧化还原反应(SRR)中表现出显著的催化活性,β-PC的Δ仅为0.37 eV,β-PC的Δ为0.13 eV。β-PC诱导的低能垒增强了离子迁移势垒,并显著加快了锂硫电池的充放电循环。此外,我们采用计算锂电极(CLE)模型研究了LiS到LiS的转化动力学。这些方面的优异性能凸显了这些材料作为锂硫电池电催化剂的潜力,为先进的高效储能解决方案铺平了道路。

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