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Hongwei Zhang

Harbin University

ORCID: 0000-0001-9354-6800

Publishes on Membrane Separation Technologies, Supercapacitor Materials and Fabrication, Advanced battery technologies research. 390 papers and 11.7k citations.

390Publications
11.7kTotal Citations

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Top publicationsby citations

Recent Development of Polymer Electrolyte Membranes for Fuel Cells
Hongwei Zhang, Pei Kang Shen|Chemical Reviews|2012
Cited by 1.3k

ADVERTISEMENT RETURN TO ISSUEPREVReviewNEXTRecent Development of Polymer Electrolyte Membranes for Fuel CellsHongwei Zhang and Pei Kang Shen*View Author Information State Key Laboratory of Optoelectronic Materials and Technologies and Key Laboratory of Low-Carbon Chemistry & Energy Conservation of Guangdong Province, School of Physics and Engineering, Sun Yat-sen University, Guangzhou 510275, P.R. China*Phone (office): +86-20-84036736. Fax: +86-20-84113369. E-mail: [email protected]Cite this: Chem. Rev. 2012, 112, 5, 2780–2832Publication Date (Web):February 16, 2012Publication History Received29 January 2011Published online16 February 2012Published inissue 9 May 2012https://pubs.acs.org/doi/10.1021/cr200035shttps://doi.org/10.1021/cr200035sreview-articleACS PublicationsCopyright © 2012 American Chemical SocietyRequest reuse permissionsArticle Views19468Altmetric-Citations1190LEARN ABOUT THESE METRICSArticle Views are the COUNTER-compliant sum of full text article downloads since November 2008 (both PDF and HTML) across all institutions and individuals. These metrics are regularly updated to reflect usage leading up to the last few days.Citations are the number of other articles citing this article, calculated by Crossref and updated daily. Find more information about Crossref citation counts.The Altmetric Attention Score is a quantitative measure of the attention that a research article has received online. Clicking on the donut icon will load a page at altmetric.com with additional details about the score and the social media presence for the given article. Find more information on the Altmetric Attention Score and how the score is calculated. Share Add toView InAdd Full Text with ReferenceAdd Description ExportRISCitationCitation and abstractCitation and referencesMore Options Share onFacebookTwitterWechatLinked InRedditEmail Other access optionsGet e-Alertsclose SUBJECTS:Alcohols,Fluoropolymers,Membranes,Proton conductivity,Thin films Get e-Alerts

Surfactant-Free Assembly of Mesoporous Carbon Hollow Spheres with Large Tunable Pore Sizes
Hongwei Zhang, Owen Noonan, Xiaodan Huang et al.|ACS Nano|2016
Cited by 481

Mesoporous carbon hollow spheres (MCHS) have wide applications, including catalysis, absorption, and energy storage/conversion. Herein, we report a one-pot, surfactant-free synthesis of MCHS using three molecules: resorcinol, formaldehyde, and tetrapropyl orthosilicate. The co-condensation process between the in situ generated silica primary particles and the polymer oligomers is regulated, leading to monodispersed MCHS with adjustable pore sizes from micropores to 13.9 nm. The resultant MCHS shows excellent performance for electrochemical double-layer capacitors with high capacitance (310 F g(-1) at 1 A g(-1)), excellent rate capability (157 F g(-1) at 50 A g(-1)), and outstanding cycling stability (98.6% capacity retention after 10 000 cycles at 10 A g(-1)). Our one-pot synthesis strategy is versatile and can be extended to fabricate metal oxide@mesoporous carbon yolk-shell structures in the absence of surfactant, paving the way toward designed synthesis of nanostructured mesoporous carbon composites for various applications.

Advances in the high performance polymer electrolyte membranes for fuel cells
Hongwei Zhang, Pei Kang Shen|Chemical Society Reviews|2012
Cited by 396

This critical review tersely and concisely reviews the recent development of the polymer electrolyte membranes and the relationship between their properties and affecting factors like operation temperature. In the first section, the advantages and shortcomings of the corresponding polymer electrolyte membrane fuel cells are analyzed. Then, the limitations of Nafion membranes and their alternatives to large-scale commercial applications are discussed. Secondly, the concepts and approaches of the alternative proton exchange membranes for low temperature and high temperature fuel cells are described. The highlights of the current scientific achievements are given for various aspects of approaches. Thirdly, the progress of anion exchange membranes is presented. Finally, the perspectives of future trends on polymer electrolyte membranes for different applications are commented on (400 references).

Silica Nanopollens Enhance Adhesion for Long-Term Bacterial Inhibition
Hao Song, Yusilawati Ahmad Nor, Meihua Yu et al.|Journal of the American Chemical Society|2016
Cited by 283

Nature's creations with spiky topological features typically exhibit intriguing surface adhesive properties. From micrometer-sized pollen grains that can easily stick to hairy insects for pollination to nanoscale virus particles that are highly infectious toward host cells, multivalent interactions are formed taking advantage of rough surfaces. Herein, this nature-inspired concept is employed to develop novel drug delivery nanocarriers for antimicrobial applications. A facile new approach is developed to fabricate silica nanopollens (mesoporous silica nanospheres with rough surfaces), which show enhanced adhesion toward bacteria surfaces compared to their counterparts with smooth surfaces. Lysozyme, a natural antimicrobial enzyme, is loaded into silica nanopollens and shows sustained release behavior, potent antimicrobial activity, and long-term total bacterial inhibition up to 3 days toward Escherichia coli. The potent antibacterial activity of lysozyme-loaded silica nanopollens is further demonstrated ex vivo by using a small-intestine infection model. Our strategy provides a novel pathway in the rational design of nanocarriers for efficient drug delivery.