{"title":"Synthesis and performance of Ti2O3/LiTiO2 decorated micro-scale Si-based composite anode materials for Li-ion batteries†","authors":"Shuai Wang, Ziyang Ma, Zhenfei Cai, Rui Cao, Yanan Cheng, Qian Lei, Qinyu Wu, Muhmmad Moin, Yangzhou Ma, Guangsheng Song and Cuie Wen","doi":"10.1039/D4CE00464G","DOIUrl":null,"url":null,"abstract":"<p >The performance of commercially available alloy-based Si anodes is hindered by rapid capacity degradation caused by volume expansion and poor rate performance stemming from their semiconductor properties. To address these challenges, we propose a Si surface modification layer for stress-relieving coupled with enhancing electrical conductivity through multiphase composite design. We prepare a scalable micro- and nano-multiphase composite Si-based anode by wet milling low-cost micro-Si and employing a heat treatment process. In this design, a SiO<small><sub><em>x</em></sub></small> layer was introduced on the Si surface by wet milling using a pitch–ethanol solution. The pitch, tetra-<em>n</em>-butyl titanate (TBOT) and LiOH as a precursor were introduced to obtain Ti<small><sub>2</sub></small>O<small><sub>3</sub></small> and LiTiO<small><sub>2</sub></small>. Combined with graphite to inhibit the internal micro-Si expansion and enhance the ionic transport capacity, the synthesized Si-based composites have an initial coulombic efficiency (ICE) of up to 82% and a high rate performance when used as an anode. Remarkably, the synthesized composite structure with the optimized Ti-source maintains a commendable capacity retention of 51.3% over 400 cycles, with a negligible capacity loss of 0.12% per cycle. This equates to a capacity of 396.7 mA h g<small><sup>−1</sup></small>, which surpasses the theoretical specific capacity of current commercial graphite anodes. These findings underscore the significant improvement in Li-ion diffusion and electrochemical performance achieved by introducing multiphase composite structures into micro-Si materials. Moreover, the straightforward preparation process demonstrates considerable potential for industrial production.</p>","PeriodicalId":70,"journal":{"name":"CrystEngComm","volume":" 29","pages":" 3937-3947"},"PeriodicalIF":2.6000,"publicationDate":"2024-06-17","publicationTypes":"Journal Article","fieldsOfStudy":null,"isOpenAccess":false,"openAccessPdf":"","citationCount":"0","resultStr":null,"platform":"Semanticscholar","paperid":null,"PeriodicalName":"CrystEngComm","FirstCategoryId":"92","ListUrlMain":"https://pubs.rsc.org/en/content/articlelanding/2024/ce/d4ce00464g","RegionNum":3,"RegionCategory":"化学","ArticlePicture":[],"TitleCN":null,"AbstractTextCN":null,"PMCID":null,"EPubDate":"","PubModel":"","JCR":"Q2","JCRName":"CHEMISTRY, MULTIDISCIPLINARY","Score":null,"Total":0}
引用次数: 0
Abstract
The performance of commercially available alloy-based Si anodes is hindered by rapid capacity degradation caused by volume expansion and poor rate performance stemming from their semiconductor properties. To address these challenges, we propose a Si surface modification layer for stress-relieving coupled with enhancing electrical conductivity through multiphase composite design. We prepare a scalable micro- and nano-multiphase composite Si-based anode by wet milling low-cost micro-Si and employing a heat treatment process. In this design, a SiOx layer was introduced on the Si surface by wet milling using a pitch–ethanol solution. The pitch, tetra-n-butyl titanate (TBOT) and LiOH as a precursor were introduced to obtain Ti2O3 and LiTiO2. Combined with graphite to inhibit the internal micro-Si expansion and enhance the ionic transport capacity, the synthesized Si-based composites have an initial coulombic efficiency (ICE) of up to 82% and a high rate performance when used as an anode. Remarkably, the synthesized composite structure with the optimized Ti-source maintains a commendable capacity retention of 51.3% over 400 cycles, with a negligible capacity loss of 0.12% per cycle. This equates to a capacity of 396.7 mA h g−1, which surpasses the theoretical specific capacity of current commercial graphite anodes. These findings underscore the significant improvement in Li-ion diffusion and electrochemical performance achieved by introducing multiphase composite structures into micro-Si materials. Moreover, the straightforward preparation process demonstrates considerable potential for industrial production.