• Title/Summary/Keyword: 소자, 소재 및 공정

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Reliability Evaluation Through Moisture Sorption Characterization of Electronic Packaging Materials (전자 패키징 소재의 수착 특성화를 통한 신뢰성 평가)

  • Park, Heejin
    • Transactions of the Korean Society of Mechanical Engineers A
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    • v.37 no.9
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    • pp.1151-1158
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    • 2013
  • Knowledge of the moisture sorption properties of a material is essential for optimal material development and analysis of the delamination failure caused by vapor pressure at the interlayer during the manufacturing process of integrated packaging devices. In this paper, both temperature dependent absorption and desorption properties according to temperature and humidity model are parameterized and the effects of water activities and temperature are discussed. The activation energy obtained from the parameterized diffusivity determines the acceleration factor for the equivalency of moisture sorption levels, which enables the effect of moisture diffusivity on the equivalent elapsed testing time required for evaluating the reliable life time to be estimated. The acceleration factor evaluated at the reliability testing standard of the flexible packaging module is exampled.

Chemical Vapor Deposition of High-Quality MoSe2 Monolayer and Its Application to van der Waals Heterostructure-Based High-Performance Field-Effect Transistors (화학기상증착법을 통한 고품질 단층 MoSe2합성 및 반데르발스 수직이종 접합 구조 기반 고성능 트랜지스터 제작)

  • Si Heon Lim;Sun Woo Kim;Seon Yeon Choi;Hyun Ho Kim
    • Journal of Adhesion and Interface
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    • v.24 no.1
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    • pp.36-40
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    • 2023
  • A van der Waals material refers to a material having a two-dimensional layered structure composed of van der Waals bonds with weak interlayer bonding. The research based on heterojunction structures using such van der Waals two-dimensional materials has been steadily studied since the discovery of graphene. Herein, this paper reports a van der Waals heterojunction -based field-effect transistor device based on monolayer single crystalline MoSe2 grown by atmospheric pressure chemical vapor deposition. We found that MoSe2 grown under optimized process conditions did not have atomic-level defects and the transistor devices incorporating MoSe2 also showed excellent characteristics.

Magnetic Induction Soldering Process for Mounting Electronic Components on Low Heat Resistance Substrate Materials (저 내열 기판소재 전자부품 실장을 위한 자기유도 솔더링)

  • Youngdo Kim;Jungsik Choi;Min-Su Kim;Dongjin Kim;Yong-Ho Ko;Myung-Jin Chung
    • Journal of the Microelectronics and Packaging Society
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    • v.31 no.2
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    • pp.69-77
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    • 2024
  • Due to the miniaturization and multifunctionality of electronic devices, a surface mount technology in the form of molded interconnect devices (MID), which directly forms electrodes and circuits on the plastic injection parts and mounts components and parts on them, is being introduced to overcome the limitations in the mounting area of electronic components. However, when using plastic injection parts with low thermal stability, there are difficulties in mounting components through the conventional reflow process. In this study, we developed a process that utilizes induction heating, which can selectively heat specific areas or materials, to melt solder and mount components without causing any thermal damage to the plastic. We designed the shape of an induction heating Cu coil that can concentrate the magnetic flux on the area to be heated, and verified the concentration of the magnetic flux and the degree of heating on the pad part through finite element method (FEM). LEDs, capacitors, resistors, and connectors were mounted on a polycarbonate substrate using induction heating to verify the mounting process, and their functionality was confirmed. We presented the applicability of a selective heating process through magnetic induction that can overcome the limitations of the reflow method.

Shape control of ZnO thin films and nanorods grown by metalorganic chemical vapor deposition (MOCVD 법으로 저온에서 성장한 ZnO 박막과 나노구조의 모양변화)

  • Kim, Dong-Chan;Kong, Bo-Hyun;Kim, Young-Yi;Jun, Sang-Ouk;An, Cheal-Hyoun;Cho, Hyung-Koun
    • Proceedings of the Korean Institute of Electrical and Electronic Material Engineers Conference
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    • 2006.11a
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    • pp.21-21
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    • 2006
  • 21세기 정보통신 및 관련 소재의 연구방향은 새로운 기능성 확보, 극한적 제어성, 복합 및 융합이라는 경향으로 발전해 가고 있다. 반도체 기술 분야에서 현재의 공정적 한계를 극복하고 새로운 기능성을 부여하기 위해 나노 합성과 배열을 기본으로 하여 bottom-up 방식의 나노소자 구현이 큰 주목을 받고 있다. 나노선의 경우 나노 스케일의 dimension, 양자 제한 효과, 우수한 결정성, self-assembly, internal stress 등 기존 벌크형 소재에서 발견할 수 없는 새로운 기능성이 나타나고 있어 바이오, 에너지, 구조, 전자, 센서 등의 분야에서의 활용이 가능하다. 현재 국내외적으로 반도체 나노선으로 널리 연구되고 있는 재료는 ZnO, $SnO_2$, SiC 등이 중심이 되고 있다. 이중 ZnO 나 노선의 합성을 위해서는 thermal CVD, MOCVD, PLD, wet-chemical 등 다양한 방법이 사용되고 있다. 특히 MOCVD 방법에 의해 수직 정렬된 ZnO 나노막대를 성장할 수 있다. 이러한 나노막대는 MO 원료 및 산소 공급량을 적절히 제어함으로서 수직 배향 및 나노선의 구경 제어가 가능하며, 나노 막대의 크기 제어와 관련해서는 반응 관내의 DEZn 와 $O_2$의 양을 변화시켜 구조체의 크기를 수 십 ~ 수 백 나노미터의 크기로 제어할 수 있다. 본 연구는 이러한 ZnO 나노선의 성장과정에서 $210^{\circ}C$ 이하의 저온에서 성장한 ZnO 버퍼층을 이용해 나노구조의 형상을 제어하고자 하였다. 특히 ZnO 저온 버퍼층의 두께에 따라 나노막대의 직경변화, 수직배향성, 형상변화의 제어가 가능하였다. 나노막대의 특성 평가는 TEM, SEM, PL, XRD 등을 이용하여 구조적, 결정학적, 광학적 특성을 분석하였다.

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Mechanical and Optical Characteristics of Transparent Stretchable Hybrid Substrate using PDMS and Ecoflex Material (PDMS-Ecoflex 하이브리드 소재를 이용한 투명 신축성 기판의 기계적 및 광학적 특성)

  • Lee, Won Jae;Park, So-Yeon;Nam, Hyun Jin;Choa, Sung-Hoon
    • Journal of the Microelectronics and Packaging Society
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    • v.25 no.4
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    • pp.129-135
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    • 2018
  • In the stretchable electronic devices, the stretchable substrate is a very essential material which determines the stretchability, performances and durability of the stretchable electronic devices. In particular, the current stretchable materials have hysteresis making difficult to used as sensors and other electronic devices. In this study, we developed a PDMS-Ecoflex hybrid stretchable substrate mixed with PDMS and Ecoflex material in order to increase stretchability and improve hysteresis characteristics. Mechanical behavior of the hybrid substrate was evaluated using a tensile test, and optical transmittance of the hybrid substrate was also measured. As the content of Ecoflex increases, the PDMS-Ecoflex hybrid substrate becomes more flexible, and the elastic modulus decreases. In addition, the PDMS substrate failed a tensile strain of 270%, while the PDMS-Ecoflex hybrid substrate did not fail even at 500% strain indicating excellent stretchability. In the repeated tensile test, the hybrid substrate with 2:1 mixing ratio of PDMS and Ecoflex showed hysteresis. On the other hand, in the case of the hybrid substrate with the mixing ratio of 1:1, hysteresis did not occur at a strain of 50% and 100%. Hence, we developed a stretchable substrate with over 150% stretchability and no hysteresis characteristics. The optical transmittance of the Ecoflex substrate was 68.6%, whereas the transmittances of the hybrid substrate with mixing ratio of 2:1 and 1:1 were 78.6% and 75.4%, respectively. These results indicate that the PDMS-Ecoflex hybrid substrate is a potential candidate for a transparent stretchable substrate.

Application and Performance Evaluation of Photodiode-Based Planck Thermometry (PDPT) in Laser-Based Packaging Processes (레이저 기반 패키징 공정에서 광 다이오드 기반 플랑크 온도 측정법(PDPT)의 적용 및 성능 평가)

  • Chanwoong Wi;Junwon Lee;Jaehyung Woo;Hakyung Jeong;Jihoon Jeong;Seunghwoi Han
    • Journal of the Microelectronics and Packaging Society
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    • v.31 no.2
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    • pp.63-68
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    • 2024
  • With the increasing use of transparent displays and flexible devices, polymer substrates offering excellent flexibility and strength are in demand. Since polymers are sensitive to heat, precise temperature control during the process is necessary. The study proposes a temperature measurement system for the laser processing area within the polymer base, aiming to address the drawbacks of using these polymer bases in laser-based selective processing technology. It presents the possibility of optimizing the process conditions of the polymer substrate through local temperature change measurements in the laser processing area. We developed and implemented the PDPT (Photodiode-based Planck Thermometry) to measure temperature in the laser-processing area. PDPT is a non-destructive, contact-free system capable of real-time measurement of local temperature increases. We monitored the temperature fluctuations during the laser processing of the polymer substrate. The study shows that the proposed laser-based temperature measurement technology can measure real-time temperature during laser processing, facilitating optimal production conditions. Furthermore, we anticipate the application of this technology in various laser-based processes, including essential micro-laser processing and 3D printing.

Nanoscale Pattern Formation of Li2CO3 for Lithium-Ion Battery Anode Material by Pattern Transfer Printing (패턴전사 프린팅을 활용한 리튬이온 배터리 양극 기초소재 Li2CO3의 나노스케일 패턴화 방법)

  • Kang, Young Lim;Park, Tae Wan;Park, Eun-Soo;Lee, Junghoon;Wang, Jei-Pil;Park, Woon Ik
    • Journal of the Microelectronics and Packaging Society
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    • v.27 no.4
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    • pp.83-89
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    • 2020
  • For the past few decades, as part of efforts to protect the environment where fossil fuels, which have been a key energy resource for mankind, are becoming increasingly depleted and pollution due to industrial development, ecofriendly secondary batteries, hydrogen generating energy devices, energy storage systems, and many other new energy technologies are being developed. Among them, the lithium-ion battery (LIB) is considered to be a next-generation energy device suitable for application as a large-capacity battery and capable of industrial application due to its high energy density and long lifespan. However, considering the growing battery market such as eco-friendly electric vehicles and drones, it is expected that a large amount of battery waste will spill out from some point due to the end of life. In order to prepare for this situation, development of a process for recovering lithium and various valuable metals from waste batteries is required, and at the same time, a plan to recycle them is socially required. In this study, we introduce a nanoscale pattern transfer printing (NTP) process of Li2CO3, a representative anode material for lithium ion batteries, one of the strategic materials for recycling waste batteries. First, Li2CO3 powder was formed by pressing in a vacuum, and a 3-inch sputter target for very pure Li2CO3 thin film deposition was successfully produced through high-temperature sintering. The target was mounted on a sputtering device, and a well-ordered Li2CO3 line pattern with a width of 250 nm was successfully obtained on the Si substrate using the NTP process. In addition, based on the nTP method, the periodic Li2CO3 line patterns were formed on the surfaces of metal, glass, flexible polymer substrates, and even curved goggles. These results are expected to be applied to the thin films of various functional materials used in battery devices in the future, and is also expected to be particularly helpful in improving the performance of lithium-ion battery devices on various substrates.

High Concentrated Metal Nano Ink for Conductive Patterns (전도성 배선 형성을 위한 고농도 금속나노잉크)

  • Seo, Young-Kwan;Kim, Tae-Hoon;Lee, Young-Il;Jun, Byung-Ho;Lee, Kwi-Jong;Kim, Dong-Hoon
    • Proceedings of the Korean Institute of Electrical and Electronic Material Engineers Conference
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    • 2008.11a
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    • pp.413-413
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    • 2008
  • 최근 잉크젯, 스크린, 그라비아 등 기존의 인쇄 방식과 인쇄 기술을 이용하여 저가의 전자회로 혹은 전자 소자를 제조하고자 프린팅 소재 및 공정 개발에 대한 산업계의 관심이 증가하고 있다. 특히 PCB, RFID, 디스플레이, 태양전지 분야의 전극재료의 개발에 많은 연구가 진행 중에 있으며, 다양한 인쇄 방법 중 미세회로의 구현이 가능한 잉크젯 프린팅을 통한 전극 형성방법에 주목하고 있다. 본 연구는 잉크젯 프린팅 방식을 통해 배선을 형성하고자 이에 적합한 다양한 농도의 잉크를 배합하여 평가하였으며, 첨가제 및 소결, 건조 조건의 변화를 통해 기재와의 부착력, 배선의 크랙을 조절하였다.

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Composite-Based Material and Process Technology Review for Improving Performance of Piezoelectric Energy Harvester (압전 에너지 수확기의 성능 향상을 위한 복합재료 기반 소재 및 공정 기술 검토)

  • Kim, Geon Su;Jang, Ji-un;Kim, Seong Yun
    • Composites Research
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    • v.34 no.6
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    • pp.357-372
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    • 2021
  • The energy harvesting device is known to be promising as an alternative to solve the resource shortage caused by the depletion of petroleum resources. In order to overcome the limitations (environmental pollution and low mechanical properties) of piezoelectric elements capable of converting mechanical motion into electrical energy, many studies have been conducted on a polymer matrix-based composite piezoelectric energy harvesting device. In this paper, the output performance and related applications of the reported piezoelectric composites are reviewed based on the applied materials and processes. As for the piezoelectric fillers, zinc oxide, which is advantageous in terms of eco-friendliness, biocompatibility, and flexibility, as well as ceramic fillers based on lead zirconate titanate and barium titanate, were reviewed. The polymer matrix was classified into piezoelectric polymers composed of polyvinylidene fluoride and copolymers, and flexible polymers based on epoxy and polydimethylsiloxane, to discuss piezoelectric synergy of composite materials and improvement of piezoelectric output by high external force application, respectively. In addition, the effect of improving the conductivity or the mechanical properties of composite material by the application of a metal or carbon-based secondary filler on the output performance of the piezoelectric harvesting device was explained in terms of the structure of the composite material. Composite material-based piezoelectric harvesting devices, which can be applied to small electronic devices, smart sensors, and medicine with improved performance, can provide potential insights as a power source for wireless electronic devices expected to be encountered in future daily life.

Characteristics of ITO Transparent Conductive Oxide by DC Magnetron Sputter Methode (DC 마그네트론 스퍼터를 이용한 ITO 투명도전막 특성)

  • Cho, Ki-Taek;Choi, Hyun;Yang, Seung-Ho
    • Proceedings of the Korean Institute of Electrical and Electronic Material Engineers Conference
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    • 2007.06a
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    • pp.269-269
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    • 2007
  • 최근 평판디스플레이 산업이 성장함에 따라 품질향상을 위한 연구가 활발히 진행중이며 또한, 부품 소재 개발에 박차를 가하고 있다. 대형 평판디스플레이 중 낮은 전력소모와 광시야각이 우수한 TFT-LCD가 각광받고 있다. TFT-LCD 소자의 투명전극으로 사용되기 위해서는 면저항 10~1k Ohm/sq., 광투과율 85% 이상의 특성이 요구되며 ITO(Indium Tin Oxide의 약자) 타겟을 스퍼터링한 박막이 일반적으로 사용되고 있다. 본 연구에서는 $In_2O_3$ 나노 분말 제조 공법으로 제작된 ITO 타겟을 사용하여 양산성 및 대형화에 적합한 DC 마그네트론 스퍼터 방식으로 투명전극을 제조하였다. 일반적으로 사용되는 고정식 DC 마그네트론 스퍼터 방식은 타겟표면에 재증착(back deposition)되는 저급산화물로 인해 이물 또는 노즐(Nodule) 이 형성되고 이로 인해 비이상적이고 불안정한 방전 플라즈마가 박막의 특성을 저하시킨다. 이러한 문제점을 해결하기 위해 이동식 DC 마그네트론 스퍼터 방식을 채택하였으며 대형 타겟을 이용한 대형화 기판 제작과 안정적인 sputter yield로 인해 uniformity가 우수한 ITO 박막을 제조하였다. ITO 박막의 저면저항 고투과율 특성을 구현하기 위해 공정변수인 산소분압, 전류밀도(DC power) 그리고 증착온도에 따른 ITO 박막의 미세조직과 결정성을 관찰하였으며 전기적 특성을 분석하였다.

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