Kisailus David, Schwenzer Birgit, Gomm John, Weaver James C, Morse Daniel E
HRL Labs LLC, 3011 Malibu Canyon Road, Malibu, California 90265, USA.
J Am Chem Soc. 2006 Aug 9;128(31):10276-80. doi: 10.1021/ja062434l.
We developed a unique method to produce ZnO thin films by kinetically controlled catalytic hydrolysis of a molecular precursor at low temperature, operating in conjunction with the vectorial control of crystal growth. Using a system in which the diffusion of a volatile catalyst into a solution of molecular precursor of the metal oxide limits the rate of hydrolysis and establishes a gradient of catalyst concentration, we investigated the nucleation of textured nanoparticles at the gas-liquid interface and characterized their subsequent growth. Use of this slow diffusion method combined with prediction of molecular species using a partial charge model enables a higher level of organizational control than obtained in other low-temperature synthesis methods, without the use of organic molecules. Various metal oxides and their morphologies and chemical compositions can be tailored for specific applications using this relatively simple approach.
我们开发了一种独特的方法,通过在低温下对分子前驱体进行动力学控制的催化水解来制备ZnO薄膜,该方法与晶体生长的矢量控制相结合。在一个挥发性催化剂扩散到金属氧化物分子前驱体溶液中限制水解速率并建立催化剂浓度梯度的系统中,我们研究了气液界面上织构化纳米颗粒的成核,并对其后续生长进行了表征。使用这种缓慢扩散方法并结合使用部分电荷模型预测分子种类,能够实现比其他低温合成方法更高水平的组织控制,且无需使用有机分子。使用这种相对简单的方法,可以针对特定应用定制各种金属氧化物及其形态和化学成分。