4.6 Article

Controlled Synthesis of Carbon Nanospheres via the Modulation of the Hydrophilic Length of the Assembled Surfactant Micelles

Journal

LANGMUIR
Volume 34, Issue 35, Pages 10389-10396

Publisher

AMER CHEMICAL SOC
DOI: 10.1021/acs.langmuir.8b02156

Keywords

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Funding

  1. Wuhan Yellow Crane Program for Excellent Talents
  2. Hubei Technology Innovation Major Project [2016AAA030]
  3. Foundation for Outstanding Youth Innovative Research Groups of Higher Education Institution in Hubei Province [T201706]
  4. Foundation for Innovative Research Groups of Hubei Natural Science Foundation of China [2017CFA009]
  5. National Natural Science Foundation of China (NSFC) [21703161]

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A co-polymerization carbonization method was employed to synthesize porous carbon nanospheres (PCNSs) using pyrrole aniline polymers as a carbon source and alkyl phenol non-ionic surfactants as templates. The effect of the hydrophilic length on the carbon nanosphere size was systematically investigated. The so-prepared PCNSs were characterized via high-magnification scanning electron microscopy, dynamic light scattering (DLS) analysis, and N-2 adsorption and desorption analysis. The results indicate that the obtained nanosphere diameter can be tuned by changing the length of the hydrophilic groups. The length of the hydrophilic groups mainly affects the size of the vesicles or micelles formed by the assembly of the surfactant in solution, as was verified by the DLS results. After activation by KOH, the typical sample EO(30)-PCNS has a high specific surface area of 2137 m(2)/g and a large pore volume of 1.76 cm(3)/g. Electrochemical tests in 6 M KOH demonstrated that the assembled EO(30)-PCNS supercapacitor electrode displays good capacitive properties, such as a high specific capacitance of 221 F/g at 1.0 A/g and a good rate capacity of 68% retention at 10.0 A/g. This finding suggests that the uniform particle shape and high specific surface area are beneficial for the ion transportation, leading to good electrochemical performances. Our work provides a novel synthetic strategy for the fabrication of carbon nanospheres or other nanosphere materials for the construction of high-performance supercapacitors by optimizing few parameters, such as the length of the hydrophilic or hydrophobic groups of the surfactants.

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