渗透汽化
膜
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
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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