0 Datasets
0 Files
Get instant academic access to this publication’s datasets.
Yes. After verification, you can browse and download datasets at no cost. Some premium assets may require author approval.
Files are stored on encrypted storage. Access is restricted to verified users and all downloads are logged.
Yes, message the author after sign-up to request supplementary files or replication code.
Join 50,000+ researchers worldwide. Get instant access to peer-reviewed datasets, advanced analytics, and global collaboration tools.
✓ Immediate verification • ✓ Free institutional access • ✓ Global collaborationJoin our academic network to download verified datasets and collaborate with researchers worldwide.
Get Free AccessHydrogel devices with mechanical toughness and tunable functionalities are highly desirable for practical long‐term applications such as sensing and actuation elements for soft robotics. However, existing hydrogels have poor mechanical properties, slow rates of response, and low functionality. In this work, two‐dimensional hydrogel actuators are proposed and formed on the self‐assembly of graphene oxide (GO) and deoxynucleic acid (DNA). The self‐assembly process is driven by the GO‐induced transition of double stranded DNA (dsDNA) into single stranded DNA (ssDNA). Thus, the hydrogel's structural unit consists of two layers of GO covered by ssDNA and a layer of dsDNA in between. Such heterogeneous architectures stabilized by multiple hydrogen bondings have Young's modulus of up to 10 GPa and rapid swelling rates of 4.0 × 10 −3 to 1.1 × 10 −2 s −1 , which surpasses most types of conventional hydrogels. It is demonstrated that the GO/DNA hydrogel actuators leverage the unique properties of these two materials, making them excellent candidates for various applications requiring sensing and actuation functions, such as artificial skin, wearable electronics, bioelectronics, and drug delivery systems.
Siyu Chen, Chang Jie Mick Lee, Gladys Shi Xuan Tan, Pei Rou Ng, Pengxiang Zhang, Jinpei Zhao, Konstantin ‘kostya’ Novoselov, Daria V. Andreeva (2024). Ultra‐Tough Graphene Oxide/DNA 2D Hydrogel with Intrinsic Sensing and Actuation Functions. Macromolecular Rapid Communications, DOI: 10.1002/marc.202400518.
Datasets shared by verified academics with rich metadata and previews.
Authors choose access levels; downloads are logged for transparency.
Students and faculty get instant access after verification.
Type
Article
Year
2024
Authors
8
Datasets
0
Total Files
0
Language
English
Journal
Macromolecular Rapid Communications
DOI
10.1002/marc.202400518
Access datasets from 50,000+ researchers worldwide with institutional verification.
Get Free Access