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Lei Zhang

Researcher at Beijing University of Technology

Publications -  57
Citations -  3410

Lei Zhang is an academic researcher from Beijing University of Technology. The author has contributed to research in topics: Catalysis & Mesoporous material. The author has an hindex of 34, co-authored 57 publications receiving 3069 citations. Previous affiliations of Lei Zhang include Hong Kong Baptist University.

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Controlled preparation and high catalytic performance of three-dimensionally ordered macroporous LaMnO3 with nanovoid skeletons for the combustion of toluene

TL;DR: In this paper, 3D macroporous (3DOM) single-phase rhombohedral perovskite-type oxide LaMnO3 materials with nanovoid skeletons were prepared using the poly(methyl methacrylate)-templating methods with the assistance of surfactant (poly(ethylene glycol) (PEG) or triblock copolymer (Pluronic P123)).
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Facile synthesis and unique physicochemical properties of three-dimensionally ordered macroporous magnesium oxide, gamma-alumina, and ceria-zirconia solid solutions with crystalline mesoporous walls.

TL;DR: The unique physicochemical properties associated with the copresence of 3DOM and mesoporous walls make these porous materials ideal candidates for applications in heterogeneous catalysis and CO(2) adsorption.
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Porous olive-like BiVO4: Alcoho-hydrothermal preparation and excellent visible-light-driven photocatalytic performance for the degradation of phenol

TL;DR: In this paper, the photocatalytic performance of the as-obtained samples was evaluated for the degradation of phenol in the presence of a small amount of H 2 O 2 under visible-light irradiation.
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Three-dimensional ordered mesoporous cobalt oxides: Highly active catalysts for the oxidation of toluene and methanol

TL;DR: In this article, a 3D ordered mesoporous cubic Co3O4 (Co-KIT6 and Co-SBA16) was fabricated adopting the KIT-6- and SBA-16-templating strategies, respectively.
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Nanosized perovskite-type oxides La1−xSrxMO3−δ (M = Co, Mn; x = 0, 0.4) for the catalytic removal of ethylacetate

TL;DR: In this paper, the performance of perovskite-type oxides in the combustion of ethylacetate (EA) has been evaluated using the citric acid complexing-hydrothermal-coupled method.