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Original Article | Open Access

Natural Rosin-based Phosphate Diester Surfactant Assisted One-step Synthesis of 3D Flowerlike β-Ni(OH)2/γ-Ni(OH)2 Composite Nano-microspheres

BoShi Wu1Juan Li2,3ChunRui Han2Feng Xu2( )
China National Pulp and Paper Research Institute Co., Ltd., Beijing, 100102, China
Beijing Key Laboratory of Lignocellulosic Chemistry, College of Materials Science and Technology, Beijing Forestry University, Beijing, 100083, China
CNNP Jiangsu Nuclear Power Corporation, Lianyungang, Jiangsu Province, 222042, China
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Abstract

Self-assembled uniform 3D flowerlike β-Ni(OH)2/γ-Ni(OH)2 composite nano-microspheres with hollow interiors were successfully synthesized via a facile aqueous-ethanol mixed solvothermal method, using nickel sulfate as a precursor, urea as a precipitant, and dehydroabietic based phosphate diester sodium (DDPDS) as a surfactant. The prepared 3D flowerlike β-Ni(OH)2/γ-Ni(OH)2 composite nano-microspheres were tested as supercapacitors in a two-electrode cell with 6 mol/L KOH electrolyte. In addition, the influence of DDPDS concentration on the morphology and size of 3D flowerlike β-Ni(OH)2/γ-Ni(OH)2 composite nano-microspheres was studied at 180 ℃. X-ray diffraction (XRD), scanning electron microscopy (SEM), BET (Brunauer, Emmett and Teller) techniques, and equity default swap (EDS) were used to characterize the structure, morphology, and size of the as-prepared samples. Moreover, a possible formation mechanism of the 3D flowerlike β-Ni(OH)2/γ-Ni(OH)2composite nano-microspheres was proposed based on the effects of DDPDS concentration and reaction time. The surfactant micelles were used as soft templates to induce the self-assembly of nanosheets. The crystallinity of the 3D flowerlike β-Ni(OH)2/γ-Ni(OH)2 composite nano-microspheres improved with the increase of DDPDS concentration, and the morphology and size of synthetic nano-microspheres could be controlled.

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Paper and Biomaterials
Pages 35-46
Cite this article:
Wu B, Li J, Han C, et al. Natural Rosin-based Phosphate Diester Surfactant Assisted One-step Synthesis of 3D Flowerlike β-Ni(OH)2/γ-Ni(OH)2 Composite Nano-microspheres. Paper and Biomaterials, 2018, 3(1): 35-46. https://doi.org/10.26599/PBM.2018.9260005

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Received: 11 October 2017
Accepted: 30 October 2017
Published: 01 January 2018
© 2018 Paper and Biomaterials Editorial Board

This is an open access article under the CC BY-NC-ND license (http://creativecommons.org/licenses/by-nc-nd/4.0/)

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