Zhonghua Cheng

ORCID: 0000-0003-1271-6930
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About
Contact & Profiles
Research Areas
  • Energy, Environment, Economic Growth
  • Environmental Impact and Sustainability
  • Covalent Organic Framework Applications
  • Fiscal Policy and Economic Growth
  • Climate Change Policy and Economics
  • Air Quality and Health Impacts
  • Energy, Environment, and Transportation Policies
  • Environmental Sustainability in Business
  • Advanced Photocatalysis Techniques
  • Metal-Organic Frameworks: Synthesis and Applications
  • Conducting polymers and applications
  • Efficiency Analysis Using DEA
  • Solar-Powered Water Purification Methods
  • Urban Transport and Accessibility
  • Global trade and economics
  • Fuel Cells and Related Materials
  • Regional Economics and Spatial Analysis
  • Economic and Environmental Valuation
  • Economic Growth and Productivity
  • Supercapacitor Materials and Fabrication
  • Advanced battery technologies research
  • Electrocatalysts for Energy Conversion
  • Membrane Separation and Gas Transport
  • Local Government Finance and Decentralization
  • Groundwater and Isotope Geochemistry

Donghua University
2017-2024

Nanjing University of Information Science and Technology
2017-2024

Tsinghua University
2022-2024

Shanghai Xuhui Central Hospital
2024

Chinese Research Academy of Environmental Sciences
2022

Yangzhou University
2021-2022

Key Laboratory of Nuclear Radiation and Nuclear Energy Technology
2022

Shijiazhuang University
2020

Southeast University
2015

Taishan University
2015

10.1016/j.resourpol.2021.102325 article EN Resources Policy 2021-09-10

10.1007/s10668-022-02123-x article EN Environment Development and Sustainability 2022-01-12

Seawater evaporation realized by solar-thermal conversion represents one of the most sustainable and effective strategies to obtain fresh water. Many approaches have been proposed achieve high efficiencies conversion, but their practical applications are limited low scalability. Herein, novel porphyrin/aniline-based conjugated microporous polymers (PACMPs) synthesized via a Buchwald-Hartwig coupling reaction, which then integrated with polyurethane sponges simple dip-coating technique. The...

10.1021/acsami.1c21693 article EN ACS Applied Materials & Interfaces 2022-01-13

10.1016/j.jclepro.2022.134780 article EN Journal of Cleaner Production 2022-10-19

Abstract The role of N-heterocyclic carbene, a well-known reactive site, in chemical catalysis has long been studied. However, its unique binding and electron-donating properties have barely explored other research areas, such as metal capture. Herein, we report the design preparation poly(ionic liquid)-derived porous organic polycarbene adsorbent with superior gold-capturing capability. With carbene sites network “nanotrap”, it exhibits an ultrahigh gold recovery capacity 2.09 g/g. In-depth...

10.1038/s41467-023-35971-w article EN cc-by Nature Communications 2023-01-17

10.1016/j.jenvman.2023.118150 article EN Journal of Environmental Management 2023-05-17

10.1016/j.jclepro.2024.141071 article EN Journal of Cleaner Production 2024-02-12

Nitrogen-rich conjugated microporous polymers (NCMPs) have attracted great attention in recent years owing to their polarity, basicity, and ability coordinate metal ions. Herein, three NCMPs, structurally close polyaniline, were facilely synthesized via chemical oxidative polymerization between multiconnected aniline precursors. The NCMPs with high N content (11.84 wt %), intrinsic ultramicroporosity (<1 nm), moderate surface area (485 m2 g–1) show wide-ranging adsorption functionality,...

10.1021/acsami.7b09553 article EN ACS Applied Materials & Interfaces 2017-10-18

The design and synthesis of novel microporous materials have received tremendous attention in both CO2 storage sequestration (CSS) electrochemical energy (EES). We report molecular conjugated polycarbazole networks as new precursors for nitrogen-enriched porous carbons. As-prepared carbons exhibit a high nitrogen content (6.1 wt %), ultramicropore size (0.7–1 nm), large surface area (1280 m2 g–1). As result, these show highly efficient reversible capture (can store 20.4 % at 1 bar 11.1 0.15...

10.1021/acs.chemmater.7b00857 article EN Chemistry of Materials 2017-05-15

10.1016/j.jenvman.2020.110532 article EN Journal of Environmental Management 2020-04-09
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