Graphitic Aza-Fused π-Conjugated Networks: Construction, Engineering, and Task-Specific Applications

被引:27
作者
Chen, Hao [1 ,2 ]
Suo, Xian [1 ]
Yang, Zhenzhen [3 ]
Dai, Sheng [1 ,3 ]
机构
[1] Univ Tennessee, Inst Adv Mat & Mfg, Dept Chem, Knoxville, TN 37996 USA
[2] Hunan Univ, Coll Chem & Chem Engn, Changsha 410082, Peoples R China
[3] Oak Ridge Natl Lab, Chem Sci Div, Oak Ridge, TN 37831 USA
关键词
catalysis; covalent quinazoline networks; covalent triazine frameworks; energy storage; hexaazatrinaphthalene networks; COVALENT TRIAZINE FRAMEWORKS; POROUS ORGANIC POLYMERS; CO2; CAPTURE; CARBON NITRIDE; HYDROGEN EVOLUTION; EFFICIENT CO2; 2-DIMENSIONAL NANOMATERIALS; ELECTROCHEMICAL CAPACITORS; HETEROGENEOUS CATALYSTS; MICROPOROUS POLYMERS;
D O I
10.1002/adma.202107947
中图分类号
O6 [化学];
学科分类号
0703 ;
摘要
2D pi-conjugated networks linked by aza-fused units represent a pivotal category of graphitic materials with stacked nanosheet architectures. Extensive efforts have been directed at their fabrication and application since the discovery of covalent triazine frameworks (CTFs). Besides the triazine cores, tricycloquinazoline and hexaazatriphenylene linkages are further introduced to tailor the structures and properties. Diverse related materials have been developed rapidly, and a thorough outlook is necessitated to unveil the structure-property-application relationships across multiple subcategories, which is pivotal to guide the design and fabrication toward enhanced task-specific performance. Herein, the structure types and development of related materials including CTFs, covalent quinazoline networks, and hexaazatriphenylene networks, are introduced. Advanced synthetic strategies coupled with characterization techniques provide powerful tools to engineer the properties and tune the associated behaviors in corresponding applications. Case studies in the areas of gas adsorption, membrane-based separation, thermo-/electro-/photocatalysis, and energy storage are then addressed, focusing on the correlation between structure/property engineering and optimization of the corresponding performance, particularly the preferred features and strategies in each specific field. In the last section, the underlying challenges and opportunities in construction and application of this emerging and promising material category are discussed.
引用
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页数:35
相关论文
共 265 条
[71]   Asymmetric Covalent Triazine Framework for Enhanced Visible-Light Photoredox Catalysis via Energy Transfer Cascade [J].
Huang, Wei ;
Byun, Jeehye ;
Roerich, Irina ;
Ramanan, Charusheela ;
Blom, Paul W. M. ;
Lu, Hao ;
Wang, Di ;
da Silva, Lucas Caire ;
Li, Run ;
Wang, Lei ;
Landfester, Katharina ;
Zhang, Kai A. I. .
ANGEWANDTE CHEMIE-INTERNATIONAL EDITION, 2018, 57 (27) :8316-8320
[72]   Visible-Light-Promoted Selective Oxidation of Alcohols Using a Covalent Triazine Framework [J].
Huang, Wei ;
Ma, Beatriz Chiyin ;
Lu, Hao ;
Li, Run ;
Wang, Lei ;
Landfester, Katharina ;
Zhang, Kai A. I. .
ACS CATALYSIS, 2017, 7 (08) :5438-5442
[73]   Hollow nanoporous covalent triazine frameworks via acid vapor-assisted solid phase synthesis for enhanced visible light photoactivity [J].
Huang, Wei ;
Wang, Zi Jun ;
Ma, Beatriz Chiyin ;
Ghasimi, Saman ;
Gehrig, Dominik ;
Laquai, Frederic ;
Landfester, Katharina ;
Zhang, Kai A. I. .
JOURNAL OF MATERIALS CHEMISTRY A, 2016, 4 (20) :7555-7559
[74]   In Situ-Doped Superacid in the Covalent Triazine Framework Membrane for Anhydrous Proton Conduction in a Wide Temperature Range from Subzero to Elevated Temperature [J].
Huang, Wenbo ;
Li, Bin ;
Wu, Yue ;
Zhang, Ying ;
Zhang, Wenxiang ;
Chen, Shuhui ;
Fu, Yu ;
Yan, Tong ;
Ma, Heping .
ACS APPLIED MATERIALS & INTERFACES, 2021, 13 (11) :13604-13612
[75]   Nitrogen-Rich Covalent Triazine Frameworks as High-Performance Platforms for Selective Carbon Capture and Storage [J].
Hug, Stephan ;
Stegbauer, Linus ;
Oh, Hyunchul ;
Hirscher, Michael ;
Lotsch, Bettina V. .
CHEMISTRY OF MATERIALS, 2015, 27 (23) :8001-8010
[76]   A fluorene based covalent triazine framework with high CO2 and H2 capture and storage capacities [J].
Hug, Stephan ;
Mesch, Maria B. ;
Oh, Hyunchul ;
Popp, Nadine ;
Hirscher, Michael ;
Senker, Juergen ;
Lotsch, Bettina V. .
JOURNAL OF MATERIALS CHEMISTRY A, 2014, 2 (16) :5928-5936
[77]   Polymer-inspired covalent triazine frameworks from the carbonaceous side - influence of unexpected surface functionalisation on liquid-phase adsorption processes [J].
Iemhoff, Andree ;
Deischter, Jeff ;
Jung, Shannon ;
Tuci, Giulia ;
Giambastiani, Giuliano ;
Palkovits, Regina .
JOURNAL OF MATERIALS CHEMISTRY A, 2021, 9 (09) :5390-5403
[78]   Copper-Modified Covalent Triazine Frameworks as Non-Noble-Metal Electrocatalysts for Oxygen Reduction [J].
Iwase, Kazuyuki ;
Yoshioka, Tatsuro ;
Nakanishi, Shuji ;
Hashimoto, Kazuhito ;
Kamiya, Kazuhide .
ANGEWANDTE CHEMIE-INTERNATIONAL EDITION, 2015, 54 (38) :11068-11072
[79]   Illustrating the Role of Quaternary-N of BINOL Covalent Triazine-Based Frameworks in Oxygen Reduction and Hydrogen Evolution Reactions [J].
Jena, Himanshu Sekhar ;
Krishnaraj, Chidharth ;
Parwaiz, Shaikh ;
Lecoeuvre, Florence ;
Schmidt, Johannes ;
Pradhan, Debabrata ;
Van der Voort, Pascal .
ACS APPLIED MATERIALS & INTERFACES, 2020, 12 (40) :44689-44699
[80]   Acetylacetone Covalent Triazine Framework: An Efficient Carbon Capture and Storage Material and a Highly Stable Heterogeneous Catalyst [J].
Jena, Himanshu Sekhar ;
Krishnaraj, Chidharth ;
Wang, Guangbo ;
Leus, Karen ;
Schmidt, Johannes ;
Chaoui, Nicolas ;
Van der Voort, Pascal .
CHEMISTRY OF MATERIALS, 2018, 30 (12) :4102-4111