Heng Zhao
Wuhan University of Technology
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Publication
Featured researches published by Heng Zhao.
Advanced Materials | 2017
Jing Liu; Heng Zhao; Min Wu; Benoit Van der Schueren; Yu Li; Olivier Deparis; Jinhua Ye; Geoffrey A. Ozin; Tawfique Hasan; Bao-Lian Su
Solar light is widely recognized as one of the most valuable renewable energy sources for the future. However, the development of solar-energy technologies is severely hindered by poor energy-conversion efficiencies due to low optical-absorption coefficients and low quantum-conversion yield of current-generation materials. Huge efforts have been devoted to investigating new strategies to improve the utilization of solar energy. Different chemical and physical strategies have been used to extend the spectral range or increase the conversion efficiency of materials, leading to very promising results. However, these methods have now begun to reach their limits. What is therefore the next big concept that could efficiently be used to enhance light harvesting? Despite its discovery many years ago, with the potential for becoming a powerful tool for enhanced light harvesting, the slow-photon effect, a manifestation of light-propagation control due to photonic structures, has largely been overlooked. This review presents theoretical as well as experimental progress on this effect, revealing that the photoreactivity of materials can be dramatically enhanced by exploiting slow photons. It is predicted that successful implementation of this strategy may open a very promising avenue for a broad spectrum of light-energy-conversion technologies.
ACS Applied Materials & Interfaces | 2016
Jing Liu; Huawen Huang; Heng Zhao; Xiaoting Yan; Sijia Wu; Yu Li; Min Wu; Li-Hua Chen; Xiao-Yu Yang; Bao-Lian Su
Three-dimensional (3D) macro-mesoporous structures demonstrate effective performance for gas sensing. In this work, we have designed and successfully prepared aperture-controllable three-dimensional interconnected macro-mesoporous ZnO (3D-IMM-ZnO) nanostructures by template-based layer-by-layer filtration deposition. XRD, SEM, and TEM have been used to characterize the obtained hexagonal wurzite 3D-IMM-ZnO nanostructures. Owing to its special 3D interconnected hierarchically porous structure, the 3D-IMM-ZnO nanostructures exhibit excellent gas sensing performances toward acetone and methanol. The 3D-IMM-ZnO nanostructure with the largest macropore demonstrates the best gas sensitivity owing to its largest cavity providing enough space for gas diffusion. On the basis of the results and analyses, we propose that the synergistic effect of electron liberation and electron density of acetone and the special structure make the 3D-IMM-ZnO nanostructures demonstrate better gas sensing properties than many other porous ZnO nanostructures and preferred selectivity to acetone.
Journal of Colloid and Interface Science | 2018
Chao Wang; Zhi Yi Hu; Heng Zhao; Wenbei Yu; Sijia Wu; Jing Liu; Li-Hua Chen; Yu Li; Bao-Lian Su
We report three types of conducting polymers (CPs), polyaniline (PANI), polypyrrole (PPY) and poly (3,4-ethylenedioxythiophene) (PEDOT) to modify the surface of the CdS nanorods to probe their photocorrosion inhibition and photocatalytic hydrogen production. Various characterizations, such as high resolution transmission electron microscopy (HRTEM), X-ray photoelectron spectroscopy (XPS), cyclic voltammetry (CV) and density function theory (DFT) calculations have been conducted to reveal the intrinsic structure of the as-constructed CPs@CdS (@ means CPs at the surface of CdS) core-shell nanorods. The results show that the PANI and PPY shells with abundant N and C atoms can significantly enhance the binding energy of Cd and S atoms on the surface of the CdS nanorods. However, there is no obvious enhancement of binding energy at the interface of the PEDOT shell and the CdS nanorods core. Therefore, PANI@CdS and PPY@CdS possess stronger driving force than PEDOT@CdS to inject the photogenerated holes in conducting polymer shells. As a result, the polyaniline (PANI) modified PANI@CdS core-shell nanorods demonstrate the most effectively enhanced hydrogen production rate of ∼9.7 mmol h-1 g-1 and effective photocorrosion inhibition in 30 h without deactivation under visible-light irradiation. The hydrogen production performance of PPY@CdS is not effectively promoted owing to the weak transmittance of light for the PPY shell. The PEDOT shell cannot improve the hydrogen production and stability property of the CdS nanorods. This work could shed some light on conducting polymers modifying metal sulfides nanostructures that is of inconceivable significance for effective photocorrosion inhibition and highly enhanced photocatalytic activities.
Applied Catalysis B-environmental | 2016
Heng Zhao; Min Wu; Jing Liu; Zhao Deng; Yu Li; Bao-Lian Su
Nano Energy | 2016
Dan Liu; Gang Cheng; Heng Zhao; Chao Zeng; Deyu Qu; Liang Xiao; Haolin Tang; Zhao Deng; Yu Li; Bao-Lian Su
Nano Energy | 2018
Yi Lu; Xiu Cheng; Ge Tian; Heng Zhao; Li He; Jie Hu; Si Ming Wu; Ying Dong; Gang Gang Chang; Silvia Lenaerts; Stéphane Siffert; Gustaaf Van Tendeloo; Zhao Fei Li; Ling Ling Xu; Xiao Yu Yang; Bao-Lian Su
Nanoscale | 2018
Fangyan Wei; Yang Liu; Heng Zhao; Xiao-Ning Ren; Jing Liu; Tawfique Hasan; Li-Hua Chen; Yu Li; Bao-Lian Su
Nano Energy | 2018
Heng Zhao; Zhi-Yi Hu; Jing Liu; Yu Li; Min Wu; Gustaaf Van Tendeloo; Bao-Lian Su
Advanced Materials | 2018
Si Ming Wu; Xiao Long Liu; Xi Liang Lian; Ge Tian; Christoph Janiak; Yue Xing Zhang; Yi Lu; Hao Zheng Yu; Jie Hu; Hao Wei; Heng Zhao; Gang Gang Chang; Gustaaf Van Tendeloo; Li-Ying Wang; Xiao Yu Yang; Bao-Lian Su
Inorganic chemistry frontiers | 2018
Zhao Peng; Li-Hua Chen; Ming-Hui Sun; Heng Zhao; Zhao Wang; Yu Li; Liyuan Li; Jian Zhou; Zhicheng Liu; Bao-Lian Su