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Bharat B. Kale

Researcher at Government of India

Publications -  253
Citations -  7594

Bharat B. Kale is an academic researcher from Government of India. The author has contributed to research in topics: Photocatalysis & Visible spectrum. The author has an hindex of 42, co-authored 226 publications receiving 6160 citations. Previous affiliations of Bharat B. Kale include South Korean Ministry of Information and Communication & Techno India.

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Two-dimensional hexagonal SnS2 nanostructures for photocatalytic hydrogen generation and dye degradation

TL;DR: In this paper, two-dimensional (2D) hexagonal tin disulfide (SnS2) nanostructures were prepared via a hydrothermal method using ethylenediamine as a capping agent.
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Perforated N-doped monoclinic ZnWO4 nanorods for efficient photocatalytic hydrogen generation and RhB degradation under natural sunlight

TL;DR: In this article, the synthesis of novel nitrogen-doped zinc tungstate (N-Doped ZnWO4) perforated nanostructures and their photocatalytic activity for hydrogen production from water and rhodamine B degradation under direct sunlight have been demonstrated for the first time.
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Decoration of CdS nanoparticles on 3D self-assembled ZnO nanorods: a single-step process with enhanced field emission behaviour

TL;DR: In this paper, a well-defined CdS-ZnO hetero-architecture has been synthesized via a facile single-step hydrothermal approach, in which self-assembled ZnO nanorods (diameter ~50 nm) are well decorated with single crystalline cdS nanoparticles (size ~10 nm).
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Rapid phase-controlled microwave synthesis of nanostructured hierarchical tetragonal and cubic β-In2S3 dandelion flowers

TL;DR: In this article, a phase controlled synthesis of hierarchical nanostructured β-In 2 S 3 dandelion flowers is realized by a rapid microwave solvothermal process using indium metal, nitric acid and thiourea as precursors.
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Unique CdS@MoS2 Core Shell Heterostructure for Efficient Hydrogen Generation Under Natural Sunlight.

TL;DR: The photoc atalytic activity suggest that an intimate interface contact, extended visible light absorption and effective photo generated charge carrier separation contributed to the photocatalytic enhancement of the CdS@MoS2 core shell.