Aug, 31, 2024

Vol.57 No.4

학회 연락처

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  • The Korean Society of Surface Science and Engineering
  • Volume 57(4); 2024
  • Article

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The Korean Society of Surface Science and Engineering 2024;57(4):338-347. Published online: Sep, 9, 2024

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Zn 이온 배터리용 양극 α-MnO2의 수열 합성 시 전구체 용액의 pH가 에너지 저장 성능에 미치는 영향

  • 전상은a,b,c,*
    a경북대학교 첨단소재공학부, b경북대학교 미래 모빌리티용 시스템반도체 혁신인재 교육연구단, c경북대학교 자동차부품 소재연구소
초록

α-MnO2 as a cathode material for Zn-ion batteries allows insertion and extraction of Zn ions within its tunnel structure during charge and discharge. The morphology and crystal structure of α-MnO2 particles critically determine their electrochemical behavior and energy storage performance. In this study, α-MnO2 was synthesized from precursor solutions under varying pH conditions using a hydrothermal method. The effects of pH values on the morphology, crystal structure, and electrochemical performance were systematically analyzed. The analysis revealed that materials synthesized at higher pH levels exhibited elongated and narrow nanorods with a lower specific surface area. In contrast, those formed at lower pH levels showed shorter, thicker nanorods with a higher specific surface area. This increased surface area at a lower pH enhanced the specific capacitance by providing a greater electrode/electrolyte interfacial area. By contrast, the material synthesized at higher pH conditions demonstrated superior rate capability, attributed to its crystal structure with wider lattice spacings. Wide lattice parameters in the material synthesized at higher pH conditions facilitated easier ion transport than at lower pH levels. Consequently, the study confirms that adjusting the pH of the precursor solution can optimize the electrochemical properties of α-MnO2 for Zn-ion batteries.

키워드 Hydrothermal, α-MnO2, pH control, Specific capacitance, Rate capability