纳米片
材料科学
扩散
石墨烯
控制释放
纳米技术
分子扩散
分子动力学
动力学
化学物理
氧化物
化学工程
异质结
范德瓦尔斯力
分子
化学
热力学
计算化学
光电子学
有机化学
公制(单位)
运营管理
物理
量子力学
冶金
工程类
经济
作者
Muchun Liu,Deisy C. Carvalho Fernandes,Zachary S. S. L. Saleeba,Robert H. Hurt
出处
期刊:ACS Nano
[American Chemical Society]
日期:2021-12-06
卷期号:15 (12): 20105-20115
被引量:9
标识
DOI:10.1021/acsnano.1c07888
摘要
Solution co-deposition of two-dimensional (2D) nanosheets with chemical solutes yields nanosheet-molecular heterostructures. A feature of these macroscopic layered hybrids is their ability to release the intercalated molecular agent to express chemical functionality on their surfaces or in their near surroundings. Systematic design methods are needed to control this molecular release to match the demand for rate and lifetime in specific applications. We hypothesize that release kinetics are controlled by transport processes within the layered solids, which primarily involve confined molecular diffusion through nanochannels formed by intersheet van der Waals gaps. Here a variety of graphene oxide (GO)/molecular hybrids are fabricated and subject to transient experiments to characterize release kinetics, locations, and mechanisms. The measured release rate profiles can be successfully described by a numerical model of internal transport processes, and the results used to extract effective Z-directional diffusion coefficients for various film types. The diffusion coefficients are found to be 8 orders of magnitude lower than those in free solution due to nanochannel confinement and serpentine path effects, and this retardation underlies the ability of 2D materials to control and extend release over useful time scales. In-plane texturing of the heterostructured films by compressive wrinkling or crumpling is shown to be a useful design tool to control the release rate for a given film type and molecular intercalant. The potential of this approach is demonstrated through case studies on the controlled release of chemical virucidal agents.
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