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Free-standing few-layered graphene oxide films: selective, steady and lasting permeation of organic molecules with adjustable speeds. | LitMetric

Free-standing few-layered graphene oxide films: selective, steady and lasting permeation of organic molecules with adjustable speeds.

Nanoscale

Beijing Key Laboratory of Materials Utilization of Nonmetallic Minerals and Solid Wastes, National Laboratory of Mineral Materials, School of Materials Science and Technology, China University of Geosciences, Beijing, 100083, China.

Published: January 2016

AI Article Synopsis

  • A variety of small molecules around 1 nm in size have important functions like antibiotics and pesticides, making them valuable for medical and environmental applications.
  • The study developed a technique to create covalently cross-linked few-layered graphene oxide (GO) films capable of controlled release of different types of small molecules over a duration of up to 9 days.
  • The research suggests that these films could advance drug and fertilizer delivery systems, as well as environmental control methods, by leveraging their unique molecular release properties.

Article Abstract

A variety of small molecules with diameters around 1 nm possess a range of functions, such as antibiotic, antimicrobic, anticoagulant, pesticidal and chemotherapy effects, making these molecules especially useful in various applications ranging from medical treatment to environmental microbiological control. However, the long-term steady delivery (release or permeation) of these small molecules with adjustable and controllable speeds has remained an especially challenging task. In this study, we prepared covalently cross-linked free-standing few-layered GO films using a layer-by-layer technique in combination with photochemical cross-linkages, and achieved a controlled release of positively charged, negatively charged, and zwitterionic small molecules with adjustable and controllable speeds. The steady delivery of the small molecule lasted up to 9 days. Other functionalities, such as graphene-enhanced Raman spectra and electrochemical properties that could also be integrated or employed in delivery systems, were also studied for our films. We expect the special molecular delivery properties of our films to lead to new possibilities in drug/fertilizer delivery and environmental microbiological control applications.

Download full-text PDF

Source
http://dx.doi.org/10.1039/c5nr08129gDOI Listing

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