• Title/Summary/Keyword: Specific capacitance

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유연소재 천 기반의 슈퍼캐패시터 저장체의 전기화학적 성능 향상

  • Yun, Tae-Gwang;O, Min-Seop;Hu, Liangbing;Hyeon, Seung-Min;Han, Seung-Min
    • Proceedings of the Korean Vacuum Society Conference
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    • 2013.02a
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    • pp.697-698
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    • 2013
  • 최근에 유연한 성질을 갖는 전자기기들의 수요가 증가하면서, 그에 따라서 유연 전자기기를 뒷받침 해줄 수 있는 에너지 저장체의 유연한 성질도 중요성이 점점 부각되고 있으며 많은 연구가 진행되고 있다. 유연한 에너지 저장체의 많은 연구들이 유연한 금속 박막이나 특수 공정처리가 필요한 고분자를 이용하고 있으나, 대부분의 유연 에너지 소자들은 에너지 저장체의 성능에 비해 고온과 산 약품과 같은 환경이 필요하며, 비용과 시간이 많이 소모되고 있다. 그에 반해 섬유는 앞에서와 같이 특수 공정 처리가 따로 필요하지 않으며 상온에서도 손 쉽게 이용 가능하며, 신축성이 뛰어난 장점이 있기 때문에 효율적, 비용적으로 유연한 에너지 저장체에 유리한 소재이다. 몸에 해로운 산과 같은 약품처리의 필요도 없으며, 용매를 흡수하는 능력이 뛰어나기 때문에 용매를 이용한 도포 방법을 사용하면 다양한 물질을 폭넓게 적용 가능하다. 그리고 적용 분야에 맞춰서 섬유의 종류를 조절하면 다양한 성질을 갖는 천 기반의 에너지 저장체가 형성되며, 면 섬유가 수소 결합과 높은 반데르 발스 결합에 의해 탄소나노튜브와 결합하여 높은 에너지 밀도를 갖는 에너지 저장체를 형성하는 것을 분석한 논문들도 보고되고 있다. 면 섬유의 특수한 성질을 이용하여 에너지 저장체를 제작하고 이를 확인하기 위해서 일반 합성 섬유인 polyester와 면 섬유를 비교 제작하였으며, 용매의 형태로 손쉽게 도포 가능한 물질은 탄소 계열의 활물질들이며, 탄소 나노 튜브나 그래핀 등이 분산된 용액을 이용해 천에 도포 가능하다. 탄소 계열의 활물질들은 대표적인 슈퍼캐패시터 물질이며, 천에 도포를 함으로써 천 기반의 슈퍼캐패시터를 제작하였다. 일반 합성 섬유 polyester와 CNT를 결합한 형태의 전극은 최대 에너지 축전 용량(Maximum specific capacitance)이 53.6 F/g으로 나타났으며, 면 섬유와 CNT를 결합한 형태의 전극은 최대 에너지 축전 용량이 122.1 F/g으로 나타났다. 따라서 면 섬유에서 높은 에너지 저장 능력을 보이는 것을 실험적으로 확인하였으며, 에너지 저장 능력이 뛰어난 면 섬유를 다음 전극 디자인에서도 일률적으로 적용하였다. 슈도캐패시터의 대표적 물질인 금속 산화물인 망간 산화물(MnO2)을 3전극 도금 시스템을 이용하여 에너지 축전 용량과 에너지 밀도를 올리는 전극을 제작하였다. 특히 망간 산화물의 형태는 표면적을 극대화하기 위해서 평균 지름은 200~300 nm 정도 되는 나노 입자의 형태로 제작하였다. 그 결과, 확연하게 에너지 축전 용량이 향상되었으며, 최대 에너지 축전 용량은 282.0 F/g, 에너지전력 밀도는 14.2 Wh/kg으로 나타나서 금속 산화물의 형태가 주는 효과를 확인할 수 있었다. 하지만 나노 입자의 형태로 제작된 금속 산화물은 문제점이 발생하였다. 금속 산화물의 전기 전도성이 매우 낮기 때문에, 전기 전도성에 비례해서 전력 밀도의 값이 표현되는데, 전기 전도성이 급격히 감소하기 때문에 전력 밀도도 급격한 감소가 나타난다. 다음과 같이 전기 전도성 물질을 첨가하는 방법은 추가의 공정이 필요한 단점이 있지만 오직 기계적인 인장응력만을 가해서 에너지 밀도와 전력 밀도를 증가시키는 전극을 제작하였다. 인장응력을 섬유 기반의 전극에 가했을 시에 가닥들간의 접촉 증가와 CNT가 정렬되면서 특정 변형률(strain) 이전에서는 전기 전도성이 최대 50% 이상 증가하는 것을 확인할 수 있었으며, 선행 연구에서 보고되었다. 이를 이용해서 전기 전도성과 직결되는 전력 밀도의 양도 증가시키고 에너지 밀도의 증가 여부까지 확인한 결과 인장을 가하기 전 면 섬유의 전력 밀도와 에너지 밀도는 6.4 kW/kg and 6.1 Wh/kg으로 나타났으나 30% 변형 인장 후에는11.4 kW/kg과 7.1 Wh/kg으로 나타났다. 그리고 망간 산화물을 첨가한 전극 역시 4.9 kW/kg과 14.2 Wh/kg으로 나타났었으나 인장 이후 전력 밀도는 14.2 kW/kg, 에너지 밀도는 17.6 Wh/kg으로 확연하게 증가한 것을 확인하였다.

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Fabrication and analysis of electrochemical performance for energy storage device composed of metal-organic framework(MOF)/porous activated carbon composite material (금속유기골격체(Metal-organic Framework) 소재가 첨가된 다공성 활성탄소 복합재료 전극 기반의 에너지 저장 매체 제조 및 전기화학적 특성 분석)

  • Lee, Kyu Seok;Jeong, Hyeon Taek
    • Journal of the Korean Applied Science and Technology
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    • v.37 no.2
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    • pp.260-267
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    • 2020
  • In this study, supercapacitor based on the all solid state electrolyte with PVA(polyvinyl alcohol), ionic liquid as a BMIMBF4(1-buthyl-3-methylimidazolium tetrafluoroborate) and activated carbon/Ni-MOF composite was fabricated and characterized its electrochemical properties with function of MOF. In order to analysis and comparison that electrochemical performances [including cyclic voltammetry(CV), electrochemical impedance spectroscopy(EIS) and galvanostatic charge/discharge test] of prepared supercapacitor based on activated carbon/Ni-MOF composite and all solid state electrolyte. As a result, specific capacitance of the supercapacitor without Ni-MOF was 380 F/g which value decreased to 340 F/g after adding Ni-MOF to activated carbon as a electrode material. This result exhibited that decreased electrochemical property of the supercapacitor effected on physical hinderance in the electrode. In further, it needs to optimization of the Ni-MOF amount (wt%) in the electrode composite to maximize its electrochemical performances.

Synthesis of MnO2 Nanowires by Hydrothermal Method and their Electrochemical Characteristics (수열합성법을 이용한 망간 나노와이어 제조 및 이의 전기화학적 특성 연구)

  • Hong, Seok Bok;Kang, On Yu;Hwang, Sung Yeon;Heo, Young Min;Kim, Jung Won;Choi, Bong Gill
    • Applied Chemistry for Engineering
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    • v.27 no.6
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    • pp.653-658
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    • 2016
  • In this work, we developed a synthetic method for preparing one-dimensional $MnO_2$ nanowires through a hydrothermal method using a mixture of $KMnO_4$ and $MnSO_4$ precursors. As-prepared $MnO_2$ nanowires had a high surface area and porous structure, which are beneficial to the fast electron and ion transfer during electrochemical reaction. The microstructure and chemical structure of $MnO_2$ nanowires were characterized by scanning electron microscopy, transmission electron microscopy, X-ray photoelectron spectroscopy, X-ray diffraction, and Brunauer-Emmett-Teller measurements. The electrochemical properties of $MnO_2$ nanowire electrodes were also investigated using cyclic voltammetry and galvanostatic charge-discharge with a three-electrode system. $MnO_2$ nanowire electrodes showed a high specific capacitance of 129 F/g, a high rate capability of 61% retention, and an excellent cycle life of 100% during 1000 cycles.

Electrochemical Characteristics of Ruthenium Oxide Electrode-Organic Electrolyte System (유기전해액에서 루테늄산화물 전극의 전기화학적 특성)

  • Doh, Chil-Hoon;Jin, Bong-Soo;Moon, Seong-In;Yun, Mun-Soo;Choi, Sang-Jin;Yug, Gyeong-Chang;Park, Jeong-Sik;Kim, Sang-Gil;Lee, Joo-Won
    • Journal of the Korean Electrochemical Society
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    • v.6 no.3
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    • pp.169-173
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    • 2003
  • Electrochemical capacitor made with metal oxide electrode uses rapid and reversible protonation/deprotonation of metal oxide material under the aqueous acidic solution, generally. Electrochemical stability window of aqueous electrolyte-type capacitor is narrow compared to that of organic electrolyte-type capacitor. Electrochemical characteristics of electrochemical capacitor made with metal oxide electrode and lithium or ammonium cation based organic electrolyte were evaluated. Electrochemical capacitor based on $RuO_2$ electrode material and 1M $LiPF_6$ in mixed solvents of EC, DEC, and EMC has anodic and cathodic specific capacitance of 145 and $142F/g-RuO_2{\cdot}nH_2O$, respectively, by using cyclic voltammetry with scan rate of 2mV/sec $g-RuO_2$ in potential range of $2.0\~4.2V(Li|Li^+))$.

Synthesis of Defective-Structure Li4Mn5O12 by Combustion Method and Its Application to Hybrid Capacitor (연소합성법에 의한 결함구조 Li4Mn5O12제조와 하이브리드 커패시터 적용)

  • Kim, Hun-Uk;Sun, Yang-Kook;Lee, Bum-Suk;Jin, Chang-Soo;Shin, Kyoung-Hee
    • Journal of the Korean Electrochemical Society
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    • v.13 no.2
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    • pp.103-109
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    • 2010
  • $Li_4Mn_5O_{12}$ was synthesized by combustion method using $LiNO_3$, $Li(CH_3COO){\cdot}2H_2O$ and $Mn(CH_3COO)_2{\cdot}4H_2O$. $Li_4Mn_5O_{12}$ was obtained over $400^{\circ}C$, however, the sample calcined at $400^{\circ}C$ for any time was mixed phases of $Li_4Mn_5O_{12}$ and $Mn_2O_3$. $Li_4Mn_5O_{12}$ calcined at $400^{\circ}C$ for 5 h had larger first discharge capacity (41.5mAh/g) at 1C-rate for 3.7~4.4V than other calcined samples. Moreover, applying to hybrid capacitor, it had good discharge capacity (24.74 mAh/g or 10.46 mAh/cc) at 100 mA/g for 1~2.5 V and higher energy density (39Wh/kg or 16.49Wh/cc) at same condition.

Recent Research Trends of Supercapacitors for Energy Storage Systems (에너지 저장시스템을 위한 슈퍼커패시터 최신 연구 동향)

  • Son, MyungSuk;Ryu, JunHyung
    • Clean Technology
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    • v.27 no.4
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    • pp.277-290
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    • 2021
  • A supercapacitor, also called an ultracapacitor or an electrochemical capacitor, stores electrochemical energy by the adsorption/desorption of electrolytic ions or a fast and reversible redox reaction at the electrode surface, which is distinct from the chemical reaction of a battery. A supercapacitor features high specific power, high capacitance, almost infinite cyclability (~ 100,000 cycle), short charging time, good stability, low maintenance cost, and fast frequency response. Supercapacitors have been used in electronic devices to meet the requirements of rapid charging/discharging, such as for memory back-up, and uninterruptible power supply (UPS). Also, their use is being extended to transportation and large industry applications that require high power/energy density, such as for electric vehicles and power quality systems of smart grids. In power generation using intermittent power sources such as solar and wind, a supercapacitor is configured in the energy storage system together with a battery to compensate for the relatively slow charging/discharging time of the battery, to contribute to extending the lifecycle of the battery, and to improve the system power quality. This article provides a concise overview of the principles, mechanisms, and classification of energy storage of supercapacitors in accordance with the electrode materials. Also, it provides a review of the status of recent research and patent, product, and market trends in supercapacitor technology. There are many challenges to be solved to meet industrial demands such as for high voltage module technologies, high efficiency charging, safety, performance improvement, and competitive prices.

Electrochemical performance of the flexible supercapacitor based on nanocarbon material/conductive polymer composite and all solid state electrolyte (탄소나노복합재료와 전고체 전해질 기반의 유연성 슈퍼커패시터의 전기화학적 특성 분석)

  • Kim, Chang Hyun;Kim, Yong Ryeol;Jeong, Hyeon Taek
    • Journal of the Korean Applied Science and Technology
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    • v.36 no.1
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    • pp.200-207
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    • 2019
  • In this study, flexible supercapacitor based on the all solid state electrolyte with PVA (polyvinyl alcohol)-$H_3PO_4$, ionic liquid as a BMIMBF4 (1-buthyl-3-methylimidazolium tetrafluoroborate) and reduced graphene oxide/conductive polymer composite was fabricated and characterized electrochemical properties with function of its flexibility. In order to measure and compare that electrochemical performances (including cyclic voltammetry(CV), electrochemical impedance spectroscopy(EIS) and galvanostatic charge/discharge,after 0~100th bending test) of prepared flexible supercapacitor based on reduced graphene oxide/conducting polymer composite and all solid state electrolyte, we have conducted press machine with constant pressure ( 0.01/cm2) for $100^{th}$ bending test. As a result, specific capacitance of the flexible supercapacitor was 43.9 F/g which value decreased to 42.0 and 40.1 F/g after 50 and $100^{th}$ bending test, respectively. This result exhibited that decreased electrochemical property of the flexible supercapacitor effected on physical stress on the electrode after repeated bending test. In addition, we have measured that electrode surface morphology by SEM to prove its decreased electrochemical property of the flexible supercapacitor after prolonged bending test.

Effect of Nitrogen Plasma Surface Treatment of Rice Husk-Based Activated Carbon on Electric Double-Layer Capacitor Performance (질소 플라즈마 표면처리가 쌀겨 기반 활성탄소의 전기 이중층 커패시터 성능에 미치는 영향)

  • Lee, Raneun;Kwak, Cheol Hwan;Lee, Hyeryeon;Kim, Seokjin;Lee, Young-Seak
    • Applied Chemistry for Engineering
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    • v.33 no.1
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    • pp.71-77
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    • 2022
  • To increase biomass utilization, rice husk-based activated carbon (RHAC) followed by nitrogen plasma surface treatment was prepared and the electric double-layer capacitor performance was investigated. Through nitrogen plasma surface treatment, up to 2.17% of nitrogen was introduced to the surface of RHAC, and in particular the sample reacted for 5 min with nitrogen plasma showed dominant formation of pyrrolic/pyridine N functional groups. In addition, mesopores were formed on the RHAC material by the removal of silica, and the surface roughness of the carbon material increased by nitrogen plasma surface treatment, resulting in the formation of many micropores. As a result of cyclic voltammetry measurement, at a scan rate of 5 mV/s, the specific capacitance of the RHAC treated with nitrogen plasma increased up to 200 F/g, showing an 80.2% improvement compared to that of using untreated RHAC (111 F/g). This is attributed to the synergetic effect of the introduction of pyrrolic/pyridine-based nitrogen functional groups and the increase of the micropore volume on the surface of the carbon material. This study has a positive effect on the environment in terms of recycling waste resources and using plasma surface treatment.

Preparation of Dual-functionalized Polymeric Membrane Electrolyte and Ni, Co-based Nanowire/MOF Array on Carbon Cloth for High-performance Supercapacitor (이중 기능 고분자 전해질 막의 제조 및 탄소 섬유에 니켈, 코발트 기반의 나노와이어/MOF 배열을 통한 고성능 슈퍼커패시터 연구)

  • Hye Jeong Son;Bong Seok Kim;Ji Min Kwon;Yu Bin Kang;Chang Soo Lee
    • Membrane Journal
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    • v.33 no.4
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    • pp.211-221
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    • 2023
  • This study presents a comprehensive study on the synthesis and characterization of PVI-PGMA/LiTFSI polymeric membrane electrolytes and CxNy-C flexible electrodes for energy storage applications. The dual-functional PVI-PGMA copolymer exhibited excellent ionic conductivity, with the PVI-PGMA73/LiTFSI200 membrane electrolyte achieving the highest conductivity of 1.0 × 10-3 S cm-1. The electrochemical performance of the CxNy-C electrodes was systematically investigated, with C3N2-C demonstrating superior performance, achieving the highest specific capacitance of 958 F g-1 and lowest charge transfer resistance (Rct) due to its highly interconnected hybrid structure comprising nanowires and polyhedrons, along with binary Co/Ni oxides, which provided abundant redox-active sites and facilitated ion diffusion. The presence of a graphitic carbon shell further contributed to the enhanced electrochemical stability during charge-discharge cycles. These results highlight the potential of PVI-PGMA/LiTFSI polymeric membrane electrolytes and CxNy-C electrodes for advanced energy storage devices, such as supercapacitors and lithium-ion batteries, paving the way for further advancements in sustainable and high-performance energy storage technologies.

Synthesis of Nitrogen-Doped Porous Carbon Fibers Derived from Coffee Waste and Their Electrochemical Application (커피 폐기물 기반의 질소가 포함된 다공성 탄소 섬유의 제조 및 전기화학적 응용)

  • Dong Hyun Kim;Min Sang Kim;Suk Jekal;Jiwon Kim;Ha-Yeong Kim;Yeon-Ryong Chu;Chan-Gyo Kim;Hyung Sub Sim;Chang-Min Yoon
    • Journal of the Korea Organic Resources Recycling Association
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    • v.31 no.1
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    • pp.57-68
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    • 2023
  • In this study, coffee waste was recycled into nitrogen-doped porous carbon fibers as an active material for high-energy EDLC (Electric Double Layer Capacitors). The coffee waste was mixed with polyvinylpyrrolidone and dissolved into dimethylformamide. The mixture was then electrospun to fabricate coffee waste-derived nanofibers (Bare-CWNF), and carbonization process was followed under a nitrogen atmosphere at 900℃. Similar to Bare-CWNF, the as-synthesized carbonized coffee waste-derived nanofibers (Carbonized-CWNF) maintained its fibrous form while preserving the composition of nitrogen. The electrochemical performance was analyzed for carbonized coffee waste (Carbonized-CW)-, carbonized PAN-derived nanofibers (Carbonized-PNF)-, and Carbonized-CWNF-based electrodes in the operating voltage window of -1.0-0.0V, Among the electrodes, Carbonized-CWNF-based electrodes exhibited the highest specific capacitance of 123.8F g-1 at 1A g-1 owing to presence of nitrogen and porous structure. As a result, nitrogen-contained porous carbon fibers synthesized from coffee waste showed excellent electrochemical performance as electrodes for high-energy EDLC. The experimental designed in this study successfully demonstrated the recycling of the coffee waste, one of the plant-based biomass that causes the environmental pollution into high-energy materials, also, attaining the ecofriendliness.