• 제목/요약/키워드: Graphene oxide quantum dot

검색결과 6건 처리시간 0.022초

Direct Comparison of Optical Properties from Graphene Oxide Quantum Dots and Graphene Oxide

  • Jang, Min-Ho;Ha, Hyun Dong;Seo, Tae Seok;Cho, Yong-Hoon
    • Applied Science and Convergence Technology
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    • 제24권4호
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    • pp.111-116
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    • 2015
  • The graphene oxide (GO) and graphene oxide quantum dots (GOQDs), which have gained research interest as new types of light-emitting materials, were synthesized by the modified Hummers method for oxidation of graphite flake and graphite nanoparticle. The optical properties of GO and GOQDs have been compared by mean of photoluminescence (PL), PL excitation (PLE), UV-vis absorbance, and time-resolved PL. The GO have an absorption peak at 229 nm and shoulder part at 310 nm, whereas the GOQDs show broad absorption with a gradual change up without any absorption peaks. The PL emission of GOQDs and GO showed the green color at 520 nm and the red color at 690 nm, respectively. The red emission of GO showed faster PL decay time than the green emission of GOQDs. In particular, the temporal PL profile of the GO showed redshift from 560 nm to 660 nm after the pump event.

Fabrication of Photo Sensitive Graphene Transistor Using Quantum Dot Coated Nano-Porous Graphene

  • 장야무진;이재현;최순형;임세윤;이종운;배윤경;황종승;황성우;황동목
    • 한국진공학회:학술대회논문집
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    • 한국진공학회 2013년도 제44회 동계 정기학술대회 초록집
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    • pp.658-658
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    • 2013
  • Graphene is an attractive material for various device applications due to great electrical properties and chemical properties. However, lack of band gap is significant hurdle of graphene for future electrical device applications. In the past few years, several methods have been attempted to open and tune a band gap of graphene. For example, researchers try to fabricate graphene nanoribbon (GNR) using various templates or unzip the carbon nanotubes itself. However, these methods generate small driving currents or transconductances because of the large amount of scattering source at edge of GNRs. At 2009, Bai et al. introduced graphene nanomesh (GNM) structures which can open the band gap of large area graphene at room temperature with high current. However, this method is complex and only small area is possible. For practical applications, it needs more simple and large scale process. Herein, we introduce a photosensitive graphene device fabrication using CdSe QD coated nano-porous graphene (NPG). In our experiment, NPG was fabricated by thin film anodic aluminum oxide (AAO) film as an etching mask. First of all, we transfer the AAO on the graphene. And then, we etch the graphene using O2 reactive ion etching (RIE). Finally, we fabricate graphene device thorough photolithography process. We can control the length of NPG neckwidth from AAO pore widening time and RIE etching time. And we can increase size of NPG as large as 2 $cm^2$. Thin CdSe QD layer was deposited by spin coatingprocess. We carried out NPG structure by using field emission scanning electron microscopy (FE-SEM). And device measurements were done by Keithley 4200 SCS with 532 nm laser beam (5 mW) irradiation.

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InGaN/GaN Micro-LED구조를 위한 그래핀 양자점 기반의 산화막 기판 특성 (Characteristics of Graphene Quantum Dot-Based Oxide Substrate for InGaN/GaN Micro-LED Structure)

  • 황성원
    • 반도체디스플레이기술학회지
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    • 제20권3호
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    • pp.167-171
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    • 2021
  • The core-shell InGaN/GaN Multi Quantum Well-Nanowires (MQW-NWs) that were selectively grown on oxide templates with perfectly circular hole patterns were highly crystalline and were shaped as high-aspect-ratio pyramids with semi-polar facets, indicating hexagonal symmetry. The formation of the InGaN active layer was characterized at its various locations for two types of the substrates, one containing defect-free MQW-NWs with GQDs and the other containing MQW-NWs with defects by using HRTEM. The TEM of the defect-free NW showed a typical diode behavior, much larger than that of the NW with defects, resulting in stronger EL from the former device, which holds promise for the realization of high-performance nonpolar core-shell InGaN/GaN MQW-NW substrates. These results suggest that well-defined nonpolar InGaN/GaN MQW-NWs can be utilized for the realization of high-performance LEDs.

용액 공정을 통한 그래핀 양자점 삽입형 유/무기 하이브리드 태양전지 제작 (Graphene Quantum Dot Interfacial Layer for Organic/Inorganic Hybrid Photovoltaics Prepared by a Facile Solution Process)

  • 김영준;박병남
    • 한국산학기술학회논문지
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    • 제19권6호
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    • pp.646-651
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    • 2018
  • 최근 태양전지의 Donor/Acceptor 계면에 그래핀 양자점을 완충 층으로 삽입하여 광 전환 효율을 향상시킨 많은 연구 결과들이 보고되었다. 그래핀 양자점은 그래핀 단일 층이 여러 겹 쌓여서 구성된 수 나노미터 크기의 물질로, 양자 제한 효과에 의한 밴드갭 조절이 가능하다는 장점을 가지고 있다. 하지만 대부분의 그래핀 양자점을 활용한 연구에서 레이저 분쇄나 수열 처리 등과 같은 복잡하고 접근성이 떨어지는 용액 공정들이 박막 형성에 사용되고 있다. 본 연구에서는 Indium tin oxide(ITO)/$TiO_2$/Poly(3-hexylthiophene)(P3HT)/Al 구조로 구성된 태양전지의 Donor/Acceptor 계면에 그래핀 양자점을 단순한 초음파 처리를 통해 용매에 분산시켜 박막 공정에 사용하였음에도 불구하고, 단락 전류를 $1.26{\times}10^{-5}A/cm^2$에서 $7.46{\times}10^{-5}A/cm^2$으로, 곡선인자(Fill factor)를 0.27에서 0.42로 향상된 결과를 확인하였다. 이러한 결과를 트랜지스터 구조의 소자를 활용한 전기적 성질 확인과 순환 전압-전류법을 통한 에너지 레벨 분석 및 가시광 흡수 스펙트럼 분석 등을 통하여 고찰하였다. 본 연구 결과를 통해 그래핀 양자점 용액 공정이 복잡한 처리 공정 없이도, 보다 폭넓게 활용 가능할 것으로 예상된다.

Possibility of Benzene Exposure in Workers of a Semiconductor Industry Based on the Patent Resources, 1990-2010

  • Choi, Sangjun;Park, Donguk;Park, Yunkyung
    • Safety and Health at Work
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    • 제12권3호
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    • pp.403-415
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    • 2021
  • Background: This study aimed to assess the possibility of benzene exposure in workers of a Korean semiconductor manufacturing company by reviewing the issued patents. Methods: A systematic patent search was conducted with the Google "Advanced Patent Search" engine using the keywords "semiconductor" and "benzene" combined with all of the words accessed on January 24, 2016. Results: As a result of the search, we reviewed 75 patent documents filed by a Korean semiconductor manufacturing company from 1994 to 2010. From 22 patents, we found that benzene could have been used as one of the carbon sources in chemical vapor deposition for capacitor; as diamond-like carbon for solar cell, graphene formation, or etching for transition metal thin film; and as a solvent for dielectric film, silicon oxide layer, nanomaterials, photoresist, rise for immersion lithography, electrophotography, and quantum dot ink. Conclusion: Considering the date of patent filing, it is possible that workers in the chemical vapor deposition, immersion lithography, and graphene formation processes could be exposed to benzene from 1996 to 2010.

GQD layers for Energy-Down-shift layer on silicon solar cells by kinetic spraying method

  • 이경동;박명진;김도연;김수민;강병준;김성탁;김현호;이해석;강윤묵;윤석구;홍병희;김동환
    • 한국진공학회:학술대회논문집
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    • 한국진공학회 2016년도 제50회 동계 정기학술대회 초록집
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    • pp.422.1-422.1
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    • 2016
  • Graphene quantum dots (GQDs), a new kind of carbon-based photo luminescent nanomaterial from chemically modified graphene oxide (CMGO) or chemically modified graphene (CMG), has attracted extensive research attention in the last few years due to its outstanding chemical, optical and electrical properties. To further extended its potential applications as optoelectronic devices, solar cells, bio and bio-sensors and so on, intensive research efforts have been devoted to the CMG. However, the CMG, a suspension of aqueous, have problematic since they are prone to agglomeration after drying a solvent. In this study, we synthesized the GQDs from graphite and deposited on silicon substrate by kinetic spray. The photo luminescent properties of deposited GQD films were analyzed and compared with initial GQDs suspension. In addition, its carbon properties were investigated with GQDs solution properties. The properties of deposited GQD films by kinetic spray were similar to that of the GQDs suspension in water. We could provide a pathway for silicon-based silicon based device applications. Finally, the well-adjusted GQD films with photo luminescence effects will show Energy-Down-Shift layer effects on silicon solar cells. The GQD layers deposited at nozzle scan speeds of 40, 30, 20, and 10 mm/s were evaluated after they were used to fabricate crystalline-silicon solar cells; the results indicate that GQDs play an important role in increasing the optical absorptivity of the cells. The short-circuit current density (Jsc) was enhanced by about 2.94 % (0.9 mA/cm2) at 30 mm/s. Compared to a reference device without a GQD energy-down-shift layer, the PCE of p-type silicon solar cells was improved by 2.7% (0.4 percentage points).

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