Li Yuan, Chopra Nitin
Metallurgical and Materials Engineering Department, Center for Materials for Information Technology (MINT), The University of Alabama, Tuscaloosa, AL 35487, USA.
Phys Chem Chem Phys. 2015 May 21;17(19):12881-93. doi: 10.1039/c5cp00928f.
Patterned growth of multilayer graphene shell encapsulated gold nanoparticles (GNPs) and their covalent linking with inorganic quantum dots are demonstrated. GNPs were grown using a xylene chemical vapor deposition process, where the surface oxidized gold nanoparticles catalyze the multilayer graphene shell growth in a single step process. The graphene shell encapsulating gold nanoparticles could be further functionalized with carboxylic groups, which were covalently linked to amine-terminated quantum dots resulting in GNP-quantum dot heterostructures. The compositions, morphologies, crystallinity, and surface functionalization of GNPs and their heterostructures with quantum dots were evaluated using microscopic, spectroscopic, and analytical methods. Furthermore, optical properties of the derived architectures were studied using both experimental methods and simulations. Finally, GNP-quantum dot heterostructures were studied for photocatalytic degradation of phenol.
展示了多层石墨烯壳包裹的金纳米颗粒(GNP)的图案化生长及其与无机量子点的共价连接。金纳米颗粒采用二甲苯化学气相沉积法生长,其中表面氧化的金纳米颗粒在一步过程中催化多层石墨烯壳的生长。包裹金纳米颗粒的石墨烯壳可以进一步用羧基官能化,羧基与胺端量子点共价连接,形成GNP-量子点异质结构。使用显微镜、光谱和分析方法评估了金纳米颗粒及其与量子点的异质结构的组成、形态、结晶度和表面功能化。此外,使用实验方法和模拟研究了所得结构的光学性质。最后,研究了GNP-量子点异质结构对苯酚的光催化降解。