Li Jichun, Xue Lingxiao, Deng Yu, Cheng Xiaowei, Ma Junhao, Xie Wenhe, Chen Meihua, Deng Yonghui
Department of Chemistry, Shanghai Stomatological Hospital & School of Stomatology, State Key Laboratory of Molecular Engineering of Polymers, Shanghai Key Laboratory of Molecular Catalysis and Innovative Materials, Fudan University, Shanghai 200433, P. R. China.
State Key Lab of Transducer Technology, Shanghai Institute of Microsystem and Information Technology, Chinese Academy of Sciences, Shanghai 200050, P. R. China.
ACS Cent Sci. 2024 Nov 21;10(12):2274-2284. doi: 10.1021/acscentsci.4c01592. eCollection 2024 Dec 25.
An efficient regiospecific co-assembly (RSCA) strategy is developed for general synthesis of mesoporous metal oxides with pore walls precisely decorated by highly dispersed noble metal nanocrystals with customized parameters (diameter and composition). It features the rational utilization of the specific interactions between hydrophilic molecular precursors, hydrophobic noble metal nanocrystals, and amphiphilic block copolymers, to achieve regiospecific co-assembly as confirmed by molecular dynamics simulations. Through this RSCA strategy, we achieved a controllable synthesis of a variety of functional mesoporous metal oxide composites (e.g., WO, ZrO, TiO) with in-pore walls precisely decorated by various noble metal nanocrystals of tailored components (Au, Ag, Pt, Pd and their nanoalloys) and sizes (3.0-8.5 nm). As an example, the obtained mesoporous 0.5-Ag/WO material has a highly interconnected mesoporous structure and uniform 6.5 nm Ag nanocrystals confined in the mesopores, showing superior NO sensing performances with high sensitivity, good selectivity, and stability at low working temperature (127 °C). spectroscopy study indicates that the NO sensing process involves a unique gas-solid reaction, where NO molecules are converted into chemisorbed NO species over the sensitive materials, inducing a remarkable change of resistance and outputting a dramatic response signal.
我们开发了一种高效的区域特异性共组装(RSCA)策略,用于一般合成介孔金属氧化物,其孔壁由具有定制参数(直径和组成)的高度分散的贵金属纳米晶体精确修饰。它的特点是合理利用亲水性分子前驱体、疏水性贵金属纳米晶体和两亲性嵌段共聚物之间的特定相互作用,以实现区域特异性共组装,这一点已通过分子动力学模拟得到证实。通过这种RSCA策略,我们实现了多种功能性介孔金属氧化物复合材料(如WO、ZrO、TiO)的可控合成,其孔壁由各种具有定制成分(Au、Ag、Pt、Pd及其纳米合金)和尺寸(3.0 - 8.5 nm)的贵金属纳米晶体精确修饰。例如,所获得的介孔0.5 - Ag/WO材料具有高度互连的介孔结构和均匀限制在介孔中的6.5 nm Ag纳米晶体,在低工作温度(127°C)下表现出具有高灵敏度、良好选择性和稳定性的优异NO传感性能。光谱研究表明,NO传感过程涉及一种独特的气固反应,其中NO分子在敏感材料上转化为化学吸附的NO物种,引起电阻的显著变化并输出强烈的响应信号。