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In-situ thermal reduction synthesis of porous carbon nitride doped gadolinium sulfide nanocomposite: An emerging electrode material for high-performance supercapacitor

Ponnaiah Sathish KumarMagnetics Initiative Life Care Research Center, Daegu Gyeongbuk Institute of Science & Technology (DGIST), 333 Techno Jungang-daero, Hyeonpung-myeon, Dalseong-gun, Daegu 711-873, Republic of KoreaYuho MinSchool of Materials Science and Engineering, Kyungpook National University, Daegu 41566, Republic of KoreaDong Choon HyunDepartment of Polymer Science and Engineering, Kyungpook National University, Daegu 41566, Republic of KoreaJi‐Hyuk ChoiResources & Materials Research Center, Korea Institute of Geoscience and Mineral Resources (KIGAM), Daejeon 34132, Republic of KoreaSungwon LeeDepartment of Physics and Chemistry, Daegu Gyeongbuk Institute of Science & Technology (DGIST), 333 Techno Jungang-daero, Hyeonpung-myeon, Dalseong-gun, Daegu 711-873, Republic of Korea
2023en
ABI

Abstract

The multiple-step synthesis, harmful organic solvents, and hazardous binders are the major obstacles for supercapacitor (SC) designers. A conventional synthesis of nanocomposite is normally involves complex steps and time-consuming. To reduce these multiple steps and process time, we report carbon nitride-doped gadolinium sulfide (CN/Gd2S3) nanocomposite obtained via a one-step in situ thermal reduction method. In our study, we introduce poly(3,4-ethylenedioxythiophenes): polystyrene sulfonate (PEDOT–PSS) to act as a dual role of binder and conducting additive, and we use DI water as the solvent for the SC electrode. Despite the reduced fabrication steps, our electrode exhibits an extraordinary specific capacity value of 1831 F g−1 at 1 A g−1 in an aqueous 2 M KOH electrolyte, as well as 98.5 % retention after 5000 cycles. Moreover, a solid-state asymmetric SC (ASC) was further made up with activated carbon (AC) as a negative electrode and CN/Gd2S3 as a positive electrode, providing a high energy density of 70.95 W h kg−1 at a specific power density of 250 W kg−1 at 1 A g−1. The remarkable specific capacitance retention of the ASC could maintain 86.8 % after 5000 cycles, indicating the potential application of CN/Gd2S3 electrode material for energy storage devices. This device (CN/Gd2S3//AC) showcased its practical application by powering twenty-six light-emitting diodes (LEDs) (each of 2.7 V) and appeared as an attractive energy storage unit for portable devices.

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