영문홈페이지 가기 아이콘 ENG
  • SNS
자동 로그아웃 안내
자동 로그아웃 남은시간

개인정보 보호를 위해 5분 후 자동으로 로그아웃 됩니다. 로그인 시간을 연장하시려면 로그인 연장하기 버튼을 클릭하여 주세요.

로그인 시간을 연장하시겠습니까?

무엇이 궁금하신가요?

    추천키워드

    Research Excellence

    [Seung Hwa Yoo] Biphasic Ni-MXene Quantum-Confined Nanostructures: A Versatile Janus Platform for Advanced Energy Storage and Catalytic Oxidations

    • 2026-02-24
    • 197 views

    [Abstract]

     

    The demand for sustainable energy storage and ecofriendly catalysts has intensified the search for advanced multifunctional materials. Herein, this work presents the synthesis and characterization of Janus Ni-MXene quantum dot (Ni-MJQD), a novel material architecture that exhibits high performance in supercapacitor and catalytic applications. A Ni-MJQD cathode delivers an impressive gravimetric specific capacity of 168.75 mAh g−1 at 3 A g−1, and its Janus structure optimizes the balance between capacity and ion diffusion. In an asymmetric hybrid supercapacitor (AHSC) with a porous activated carbon (PAC) anode, it achieves an energy density of 54.22 Wh kg−1, a power density of 1599 W kg−1, and 88% capacity retention over 20 000 cycles. As a catalyst, the Ni-MJQD also exhibits high activity in benzyl alcohol oxidation, reaching 95% conversion and 98.4% selectivity for benzaldehyde, with the largest turnover frequency of 8.8825 × 10−3 moles g−1 h−1 using peroxymonosulfate (PMS) as an oxidant. Mechanistic analysis reveals contributions from both radical and nonradical pathways. These findings emphasize the unique potential of the Ni-MJQD electrodes for sustainable energy storage and green synthesis applications.

     

     

     

     

    [Article Information]

     

     - Source title: Advanced Materials, 37(45), e05852

    - DOI: 10.1002/adma.202505852

     

    [Author PURE profile]

    Associate Professor Seung Hwa Yoo

    - Department of Quantum System Engineering

    미리보기

    Loading