- AutorIn
- Chuanhui Huang Technische Universität Dresden, Dresden, Germany
- Xinglong ShangDepartment of Engineering Mechanics & State Key Laboratory of Fluid Power and Mechatronic Systems, Zhejiang University, Hangzhou, China
- Xinyuan ZhouTianjin Key Laboratory of Drug Targeting and Bioimaging, Life and Health Intelligent Research Institute, Tianjin University of Technology, Tianjin, China
- Zhe Zhang
- Xing Huang
- Yang Lu
- Mingchao Wang
- Markus Löffler
- Zhongquan Liao
- Haoyuan Qi
- Ute Kaiser
- Dana Schwarz
- Andreas Fery
- Tie Wang
- Stefan C. B. Mannsfeld
- Guoqing Hu
- Xinliang Feng
- Renhao Dong
- Titel
- Hierarchical conductive metal-organic framework films enabling efficient interfacial mass transfer
- Zitierfähige Url:
- https://nbn-resolving.org/urn:nbn:de:bsz:14-qucosa2-980886
- Quellenangabe
- Nature communications
Erscheinungsjahr: 2023
Jahrgang: 14
E-ISSN: 2041-1723
Artikelnummer: 3850 - Erstveröffentlichung
- 2023
- Abstract (EN)
- Heterogeneous reactions associated with porous solid films are ubiquitous and play an important role in both nature and industrial processes. However, due to the no-slip boundary condition in pressure-driven flows, the interfacial mass transfer between the porous solid surface and the environment is largely limited to slow molecular diffusion, which severely hinders the enhancement of heterogeneous reaction kinetics. Herein, we report a hierarchical-structure-accelerated interfacial dynamic strategy to improve interfacial gas transfer on hierarchical conductive metal-organic framework (c-MOF) films. Hierarchical c-MOF films are synthesized via the in-situ transformation of insulating MOF film precursors using π-conjugated ligands and comprise both a nanoporous shell and hollow inner voids. The introduction of hollow structures in the c-MOF films enables an increase of gas permeability, thus enhancing the motion velocity of gas molecules toward the c-MOF film surface, which is more than 8.0-fold higher than that of bulk-type film. The c-MOF film-based chemiresistive sensor exhibits a faster response towards ammonia than other reported chemiresistive ammonia sensors at room temperature and a response speed 10 times faster than that of the bulk-type film.
- Andere Ausgabe
- Link zum Artikel, der zuerst in der Zeitschrift „Nature Communications” im Verlag Springer Nature erschienen ist.
DOI: 10.1038/s41467-023-39630-y - Freie Schlagwörter (EN)
- c-MOF, gas permeability, chemiresistive sensors
- Klassifikation (DDC)
- 500
- Verlag
- Springer Nature, Berlin
- Förder- / Projektangaben
- European Commission (EC)
H2020 | SGA-RIA
Graphene Flagship Core Project 3
(GrapheneCore3)
ID: 881603 - Deutsche Forschungsgemeinschaft (DFG)
Chemistry of Synthetic Two-Dimensional Materials
(CRC 1415)
ID: 417590517 - European Commission (EC)
Horizon 2020
Development of Functional Conjugated Two-Dimensional Metal-Organic Frameworks
(FC2DMOF)
ID: 852909 - Version / Begutachtungsstatus
- publizierte Version / Verlagsversion
- URN Qucosa
- urn:nbn:de:bsz:14-qucosa2-980886
- Veröffentlichungsdatum Qucosa
- 15.12.2025
- Dokumenttyp
- Artikel
- Sprache des Dokumentes
- Englisch
- Lizenz / Rechtehinweis
CC BY 4.0