Intermediate layer engineering with composite sols for enhanced separation efficiency and hydrothermal stability of 1,2-bis(triethoxysilyl)methane-derived hybrid silica membranes

渗透汽化 化学工程 材料科学 热液循环 复合数 渗透 热稳定性 涂层 制作 图层(电子) 混合材料 膜技术 相容性(地球化学) 膜结构 水热合成 浸涂 化学稳定性 纳米技术
作者
Rongxue Li,Hongdan Wu,Zhihui Zhou,Xianyuan Fan,Peng Jia
出处
期刊:Microporous and Mesoporous Materials [Elsevier BV]
卷期号:399: 113865-113865 被引量:1
标识
DOI:10.1016/j.micromeso.2025.113865
摘要

Organic-inorganic hybrid silica membranes, which combine the thermal stability of inorganic frameworks with the flexibility of organic groups, are promising for pervaporation applications. The intermediate layer, a crucial structural component bridging the particulate support and dense separation layers, plays a decisive role not only in governing the film-forming quality but also in determining interfacial compatibility and structural integrity. In this study, 1,2-bis(triethoxysilyl)methane (BTESM) was employed as the precursor to fabricate multilayer SiO 2 hybrid membranes via the sol-gel method, with TiO 2 -SiO 2 , TiO 2 -ZrO 2 , and SiO 2 -ZrO 2 composite sols introduced as intermediate layers. The effects on membrane microstructure, pervaporation performance, and hydrothermal stability were systematically investigated. Among the three systems, the TiO 2 -SiO 2 derived membrane exhibited the highest performance, achieving a permeation flux of 0.88 kg m −2 h −1 and a separation factor of 1960 under optimized conditions of six coating cycles, 0.5 wt% sol concentration, and 550 °C calcination. It also showed excellent structural integrity during both hydrothermal treatment and long-term testing. Mechanistic analysis revealed that the formation of Ti-O-Si bridging bonds effectively inhibited grain growth and retarded the amorphous-to-crystalline transition, thereby stabilizing the intermediate layer structure and enhancing membrane robustness. This study establishes a structure-performance relationship for intermediate layer design and offers practical guidance for the development of durable, high-performance hybrid membranes in industrial pervaporation processes. • BTESM precursor enabled fabrication of multilayer hybrid silica membranes. • Composite sols (TiO 2 -SiO 2 , TiO 2 -ZrO 2 , SiO 2 -ZrO 2 ) were used as interlayers. • TiO 2 -SiO 2 -based membrane achieved 0.88 kg m −2 h −1 flux and 1960 separation factor. • TiO 2 -SiO 2 sol-derived interlayer enhanced hydrothermal and long-term stability. • Ti-O-Si bonds inhibited crystallization and strengthened membrane integrity.
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