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        검색결과 16

        1.
        2024.12 KCI 등재 구독 인증기관 무료, 개인회원 유료
        본 연구에서는 유기계 산화 방지제인 가려진 페놀이 그래프팅된 산화 그래핀(hindered phenol-grafted graphene oxide, HP-GO)을 합성하였고, 이를 도입한 나피온(Nafion) 기반의 복합 막을 제조하여 고분자 전해질 막 연료전지에 응용하 였다. HP-GO는 3,5-디-tert-뷰틸-4-히드록시페닐프로피오닐 클로라이드에 존재하는 염화 카보닐기(carbonyl chloride)와 GO에 존재하는 히드록시간의 치환 반응을 통해 합성되었으며, 합성된 HP-GO를 고분자 기지체 대비 0.01~0.5 wt%까지 포함하는 복합 막을 제조하여 순수 Nafion과의 물성 차이를 비교하였다. 특정 함량의 HP-GO가 첨가된 복합 막은 순수 Nafion에 비해 우수한 인장강도와 수분 흡수율 및 치수안정성을 나타내었다. 특히 HP-GO의 산화 방지 특성으로 인해 HP-GO가 첨가된 복 합 막은 장시간의 펜톤 평가(Fenton’s test) 이후 순수 Nafion 대비 높은 산화 안정성을 나타내었다. 또한 HP-GO에 의한 향상 된 수분 흡수율에 의해 복합 막은 전 습도 구간에서 순수 Nafion 대비 우수한 수소 이온 전도도를 나타내었다.
        4,500원
        2.
        2024.12 KCI 등재 구독 인증기관 무료, 개인회원 유료
        본 연구에서는 산화 방지 특성이 있는 가려진 페놀기를 도입한 산화 그래핀(hindered phenol-grafted graphene oxide, HP-GO)을 합성한 후 탄화수소계 고분자인 sulfonated poly(arylene ether sulfone) (SPAES)을 기지체로 사용한 복합 막을 제조하여 고분자 연료전지 시스템에 응용하고자 하였다. HP-GO는 GO 표면의 하이드록시기(hydroxy group)와 HP의 염화 카 보닐(carbonyl chloride) 간의 친핵성 아실치환 반응을 통해 합성되었으며, HP-GO의 비율을 다르게 첨가한 복합 막을 제조한 후 선형 SPAES 막과의 비교를 통해 성능 특성 변화를 확인하였다. 특정 함량의 HP-GO를 첨가한 복합 막의 경우 선형 SPAES 막에 비해 체적 안정성과 기계적 강도 및 수소 이온 전도도가 증가된 것을 확인할 수 있었으며, 펜톤 평가(Fenton’s test) 진행 후 막 분해 시간 및 잔여 막 무게 비율이 증가되는 경향을 통해 화학적 내구성 역시 증가한 것을 확인할 수 있었다.
        4,300원
        3.
        2023.12 KCI 등재 구독 인증기관 무료, 개인회원 유료
        본 연구에서는 산화 방지 특성이 있는 가리워진 아민기를 함유한 산화 그래핀(hindered amine grafted graphene oxide, HA-GO)을 합성하여 이를 도입한 나피온(Nafion) 기반의 복합 막을 제조한 후 고분자 전해질 막 연료전지 시스템에 응용하였다. HA-GO는 4-아미노-2, 2, 6, 6-테트라메틸-4-피페리딘(4-amino-2, 2, 6, 6-tetramethyl piperidine)에 존재하는 아민 기와 GO 표면에 존재하는 에폭시기의 개환 반응을 통해 제조하였으며, 합성된 HA-GO의 함량을 달리한 복합 막을 제조하여 순수 Nafion 막과 성능 특성을 비교하였다. HA-GO가 첨가된 복합 막은 Nafion 단일 막에 비해 기계적 물성, 화학적 안정성 및 수소이온 전도 특성이 향상되었다. 특히 HA-GO의 산화 방지 특성으로 인해 HA-GO가 첨가된 복합 막은 펜톤 평가 (Fenton’s test) 이후 수소이온 전도도의 유지 특성이 Nafion 단일 막에 비해 큰 폭으로 향상된 것을 확인할 수 있었다.
        4,200원
        4.
        2023.05 KCI 등재 구독 인증기관 무료, 개인회원 유료
        Graphene oxide/Iron III oxide (GO: Fe2O3) nanocomposites (NCs) have been topical in recent times owing to the enhanced properties they exhibit. GO acting as a graphene derivative has demonstrated superior features as obtainable in a graphene sheet. Furthermore, the attachment of oxygen functional groups at its basal and edge planes of graphene has allowed for easy metal/oxide functionalization for improved properties harvesting. Fe2O3 nanoparticles (NPs) on the other hand have polymorphic property enabling the degeneracy of Fe2O3 in different phases, thereby resulting in different physical and crystalline properties when used to functionalize GO. The properties of GO: Fe2O3 have been applied to supercapacitor energy harvesting, Li-ion batteries, and biomedicine. The enhanced properties are attributed to the adsorption and electronic structure properties of Fe atoms. In this review, the various synthesis used in the preparation of reduced/graphene oxide: Fe2O3 is discussed. As indicated in the considered literature, the XPS analysis suggests electronic bond interactions between C–C, C–O, C–Fe and Fe–C. The available report on UPS measurements further suggests the formation of mixed states emanating from  and  bonds. The discussed reports further suggest that the various applications based on the harvesting of electronic, electrical, and magnetic properties are due to the ionic and exchange interactions between the different orbital states of carbon, oxygen and iron. The challenges and future prospects of the synthesis and application of GO/Fe2O3 are examined. Graphical abstract showing the process of exfoliation, reduction and functionalization of graphite to produce reduced graphene oxide (rGO).
        8,400원
        5.
        2021.08 KCI 등재 구독 인증기관 무료, 개인회원 유료
        Most recently, graphene-related composite-modified electrode surfaces are been widely employed to improve surface interactions and electron transfer kinetics. Hydrothermally prepared strontium pyro niobate (SPN) and reduced graphene oxide/ strontium pyro niobate (RGOSPN) nanostructures reveal excellent morphology. X-ray diffraction analysis of SPN and RGOSPN agree with standard data. Thermogravimetry–differential scanning calorimetry analyses show that RGOSPN has higher thermal stability than SPN. In addition, from the polarization–electric field (P–E) loop measurements, the estimated value of remnant polarization (Pr) and coercive electric field (Ec) of SPN are 0.039 μC cm−2 and − 2.90 kV cm−1 and that of RGOSPN nanocomposite are 0.0139 μC cm−2 and − 2.04 kV cm−1. Cyclic voltammetry measurements show that RGOSPN nanocomposite manifests the possibility of electrochemical reversibility beyond long cycles without change in performance. The redox cycle reveal that RGOSPN can be used as part of a composite electrode for hybrid capacitors dynamic conditions. Moreover, the specific capacitance of SPN and RGOSPN was calculated using galvanostatic charge–discharge (GCD) technique. The observed energy density of 9.1 W h kg−1 in RGOSPN is higher when compared with previous reported values.
        4,800원
        6.
        2021.08 KCI 등재 구독 인증기관 무료, 개인회원 유료
        Research on Graphene and its importance in the field of energy conversion and storage devices such as fuel cells, batteries, supercapacitors and solar cells has gained momentum recently. It is studied to be the most suitable electrode material for enhanced performance of supercapacitors in terms of charge–discharge cycles, specific capacitance, high power and energy densities and so on, specifically due to its high conductivity and large theoretical surface area. Unfortunately, it posits lot of challenges due to its irreversible stacking between the individual sheets resulting in the decrease in the Specific Surface Area (SSA) compared to the theoretically reported values. Numerous studies have been carried out to prevent this stacking in order to increase the surface area, thereby being a more suitable material for the manufacture of electrodes for supercapacitors as its capacitance greatly depends on the electrode material. To solve this problem, the conversion of two-dimensional graphene sheets to three-dimensional crumpled graphene structure has been verified to be the most effective approach. The study of crumpled graphene has been one of the recent trends in the field of energy storage applications in consumer electronics and hybrid vehicles as the process of crumpling can be controlled to suit the prospective device applications.
        5,400원
        7.
        2021.05 KCI 등재 SCOPUS 구독 인증기관 무료, 개인회원 유료
        This study produces electroconductive polycaprolactone (PCL)-based film with different amounts of graphene (G) through electrospinning, and the characteristics of the produced G/PCL composites are investigated. The G/PCL results are analyzed by comparing them with those obtained using pure PCL electrospun film as a control. The morphology of electrospun material is analyzed through scanning electron microscopy and transmission electron microscopy. Mechanical and electrical properties are also evaluated. Composites containing 1% graphene have the highest elongation rate, and 5% samples have the highest strength and elasticity. Graphene contents > 25% show electro-conductivity, which level improves with increase of graphene content. Biological characteristics of G/PCL composites are assessed through behavioral analysis of neural cell attachment and proliferation. Cell experiments reveal that compositions < 50% show slightly reduced cell viability. Moreover, graphene combinations facilitated cell proliferation compared to pure PCL. These results confirm that a 25 % G/PCL composition is best for application to systems that introduce external stimuli such as electric fields and electrodes to lead to synergistic efficiency of tissue regeneration.
        4,000원
        8.
        2020.12 KCI 등재 SCOPUS 구독 인증기관 무료, 개인회원 유료
        A facile microwave assisted solvothermal process is designed for fabricating SnS nanoparticles decorated on graphene nanosheet, which used as visible light driven photocatalyst. Some typical characterization techniques such as XRD, FT-IR, SEM with EDX analysis, and TEM and BET analysis are used to analyse the physical characteristics of as-prepared samples. Spherical SnS nanoparticles are uniformly dispersed on the surface of graphene nanosheet due to ammonia, which can prevent the aggregation of graphene oxide. Meanwhile, microwave radiation provides fast energy that promotes the formation of spherical SnS nanoparticles within a short time. The visible light photocatalytic activity of as-prepared SnS-GR nanocomposites is analysed through photodegradation efficiency of methylene blue with high concentration. According to the higher photocatalytic property, the as-prepared SnS-GR nanocomposites can be expected to be an efficient visible light driven photocatalyst. After five cycles for decolorization, the rate decreases from 87 % to 78 % (about 9 %). It is obvious that the photocatalytic activity of SnS-GR nanocomposite has good repeatability.
        4,000원
        9.
        2020.10 KCI 등재 구독 인증기관 무료, 개인회원 유료
        Graphene nanoribbons materialize as a next-generation carrier for development of nanodimensional diagnostic devices and drug delivery systems due to the unique and cutting-edge electronic, thermal, mechanical and optical properties associated with graphene. This review article focuses on the important applications of GNRs in the field of biomedicine and biosensing. Graphene nanoribbons are highly developed form of graphene with a wide importance due to their distinctive properties such as large surface area, enhanced mechanical strength and improved electro-conductivity. GNRs are effective substitutes for conventional silicon-based transistors used in biochemical reactions and exploited in the fields of biomedicine and diagnostics due to their effective uptake by mammalian cells. The cellular interactions of GNRs consist of highly specific receptormediated transport, phagocytosis and non-specific transport systems involving copious forces of adhesion. The presence of quantum chains in GNRs increases their potential for fabrication of technically challenging sensing devices in the future.
        4,200원
        10.
        2018.12 KCI 등재 구독 인증기관 무료, 개인회원 유료
        Graphene is a single atomic layer of carbon atoms, and has exceptional electrical, mechanical, and optical characteristics. It has been broadly utilized in the fields of material science, physics, chemistry, device fabrication, information, and biology. In this review paper, we briefly investigate the ideas, structure, characteristics, and fabrication techniques for graphene applications in lithium ion batteries (LIBs). In LIBs, a constant three-dimensional (3D) conductive system can adequately enhance the transportation of electrons and ions of the electrode material. The use of 3D graphene and graphene-expansion electrode materials can significantly upgrade LIBs characteristics to give higher electric conductivity, greater capacity, and good stability. This review demonstrates several recent advances in graphenecontaining LIB electrode materials, and addresses probable trends into the future.
        4,000원
        11.
        2018.01 KCI 등재 구독 인증기관 무료, 개인회원 유료
        Gold functionalized graphene oxide (GOAu) nanoparticles were reinforced in acrylonitrilebutadiene rubbers (NBR) via solution and melt mixing methods. The synthesized NBR-GOAu nanocomposites have shown significant improvements in their rate of curing, mechanical strength, thermal stability and electrical properties. The homogeneous dispersion of GOAu nanoparticles in NBR has been considered responsible for the enhanced thermal conductivity, thermal stability, and mechanical properties of NBR nanocomposites. In addition, the NBR-GOAu nanocomposites were able to show a decreasing trend in their dielectric constant (ε´) and electrical resistance on straining within a range of 10–70%. The decreasing trend in ε´ is attributed to the decrease in electrode and interfacial polarization on straining the nanocomposites. The decreasing trend in electrical resistance in the nanocomposites is likely due to the attachment of Au nanoparticles to the surface of GO sheets which act as electrical interconnects. The Au nanoparticles have been proposed to function as ball rollers in-between GO nanosheets to improve their sliding on each other and to improve contacts with neighboring GO nanosheets, especially on straining the nanocomposites. The NBR-GOAu nanocomposites have exhibited piezoelectric gauge factor (GFε´) of ~0.5, and piezo-resistive gauge factor (GFR) of ~0.9 which clearly indicated that GOAu reinforced NBR nanocomposites are potentially useful in fabrication of structural, high temperature responsive, and stretchable strain-sensitive sensors.
        4,500원
        12.
        2017.04 KCI 등재 구독 인증기관 무료, 개인회원 유료
        Porous materials play a vital role in science and technology. The ability to control their pore structures at the atomic, molecular, and nanometer scales enable interactions with atoms, ions and molecules to occur throughout the bulk of the material, for practical applications. Three-dimensional (3D) porous carbon-based materials (e.g., graphene aerogels/hydrogels, sponges and foams) made of graphene or graphene oxide-based networks have attracted considerable attention because they offer low density, high porosity, large surface area, excellent electrical conductivity and stable mechanical properties. Water pollution and associated environmental issues have become a hot topic in recent years. Rapid industrialization has led to a massive increase in the amount of wastewater that industries discharge into the environment. Water pollution is caused by oil spills, heavy metals, dyes, and organic compounds released by industry, as well as via unpredictable accidents. In addition, water pollution is also caused by radionuclides released by nuclear disasters or leakage. This review presents an overview of the state-of-the-art synthesis methodologies of 3D porous graphene materials and highlights their synthesis for environmental applications. The various synthetic methods used to prepare these 3D materials are discussed, particularly template-free self-assembly methods, and template-directed methods. Some key results are summarized, where 3D graphene materials have been used for the adsorption of dyes, heavy metals, and radioactive materials from polluted environments.
        4,500원
        13.
        2017.04 KCI 등재 구독 인증기관 무료, 개인회원 유료
        식품 포장, 전자 기기 등에 활용되고 있는 고분자 기반 기체 차단성 필름은 경량성, 낮은 제조 원가, 높은 가공성 으로 인하여 많은 주목을 받고 있다. 특히 전자기기에 활용되기 위하여, 기체 차단 필름은 매우 높은 수준의 기체 차단성을 요구받고 있다. 하지만 현재 수준의 고분자 기반 기체 차단 필름은 다른 소재와 비교하여 상대적으로 높은 수준의 기체 투과 유량을 보이고 있다. 따라서 기존의 고분자 필름이 가지고 있는 장점을 유지하면서 더 높은 수준의 기체 차단성을 부여하기 위한 요구가 증대되고 있다. 최근 그래핀 소재는 기체 차단을 위한 2차원 소재로서 각광받고 있다. 그러나 그래핀 소재의 낮 은 가공성과 어려운 대면적화 문제 때문에 산화그래핀이 그 대안으로서 떠오르고 있다. 산화그래핀은 높은 종횡비를 가지는 2차원 층상구조의 그래핀에 산소관능기를 함유한 형태로서, 수용성 혹은 극성 용매에 잘 분산되는 성질을 가지며, 따라서 대 량 생산에 용이한 특성을 가지고 있다. 본 연구에서는, 산화그래핀이 함유된 폴리이미드 나노복합막을 제조하였다. 폴리이미 드는 현재 널리 이용되고 있는 기체 차단성 고분자 중의 하나로서 높은 기계적 강도, 열적 안정성 및 내화학성을 가지고 있 다. 본 연구를 통하여 산화그래핀이 함유된 폴리이미드 나노복합막이 기체 차단성을 가지고 있음을 확인하였다. 더 나아가, Triton X-100이나 sodium deoxycholate (SDC) 등의 계면활성제를 나노복합막에 도입함으로써 산화그래핀의 고분자 매트릭스 내에서의 분산성을 향상시켜 기체 차단성을 높이고자 하였다. 그 결과로서, Triton X-100이 도입된 나노복합막이 예상치와 유 사한, 향상된 기체 차단성을 보임을 확인하였다. 본 연구를 기반으로 고분자 기반 나노복합막의 기체 차단성 분야로의 활용성 이 증대될 것으로 기대한다.
        4,500원
        14.
        2016.03 KCI 등재 구독 인증기관 무료, 개인회원 유료
        Recently, with continuous developments in the field of materials science, graphene oxide (GO) has emerged as a promising material with excellent electrical, thermal, mechanical, and optical properties, which play important roles in most fields. Researchers have achieved considerable progress with graphene. Chitosan (CS) is a natural polymer that has been studied intensively owing to its specific formation, high chemical resistance, and excellent physical properties. These outstanding properties have led to its universal use in applications such as textile fabrics, tissue engineering, medicine and health, coatings, and paints. By combining the advantages of GO and CS, different types of promising materials can be obtained. This review discusses the preparation of GO-CS fibers, hydrogel and aerogel, and the applications of GO-CS nanocomposites. In addition, directions for future research on graphene material composites are discussed.
        4,000원
        15.
        2012.03 KCI 등재 구독 인증기관 무료, 개인회원 유료
        Currently, graphene is a topic of very active research in fields from science to potential applications. For various radio-frequency (RF) circuit applications including low-noise amplifiers, the unique ambipolar nature of graphene field-effect transistors can be utilized for high-performance frequency multipliers, mixers and high-speed radiometers. Potential integration of graphene on Silicon substrates with complementary metal-oxide-semiconductor compatibility would also benefit future RF systems. The future success of the RF circuit applications depends on vertical and lateral scaling of graphene metal-oxide-semiconductor field-effect transistors to minimize parasitics and improve gate modulation efficiency in the channel. In this paper, we highlight recent progress in graphene materials, devices, and circuits for RF applications. For passive RF applications, we show its transparent electromagnetic shielding in Ku-band and transparent antenna, where its success depends on quality of materials. We also attempt to discuss future applications and challenges of graphene.
        4,000원
        16.
        2012.03 KCI 등재 구독 인증기관 무료, 개인회원 유료
        The near explosion of attention given to graphene has attracted many to its research field. As new studies and findings about graphene synthesis, properties, electronic quality control, and possible applications simultaneous burgeon in the scientific community, it is quite hard to grasp the breadth of graphene history. At this stage, graphene's many fascinating qualities have been amply reported and its potential for various electronic applications are increasing, pulling in ever more newcomers to the field of graphene. Thus it has become important as a community to have an equal understanding of how this material was discovered, why it is stirring up the scientific community and what sort of progress has been made and for what purposes. Since the first discovery, the hype has expediently led to near accomplishment of industrial-sized production of graphene. This review covers the progress and development of synthesis and transfer techniques with an emphasis on the most recent technique of chemical vapor deposition, and explores the potential applications of graphene that are made possible with the improved synthesis and transfer.
        4,900원