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dc.contributor.advisor 최종민 -
dc.contributor.author Hyunki Ko -
dc.date.accessioned 2022-07-07T02:28:59Z -
dc.date.available 2022-07-07T02:28:59Z -
dc.date.issued 2021 -
dc.identifier.uri http://dgist.dcollection.net/common/orgView/200000361898 en_US
dc.identifier.uri http://hdl.handle.net/20.500.11750/16649 -
dc.description.abstract A new polymeric semiconductor, which can effectively extend linear dynamic ranges (LDRs) of organ-ic photodiodes (OPDs), was developed. Copolymers based on alkylthio-substituted benzo[1,2-b:4,5-b’]dithiophene (BDT) are synthesized in conjunction with fluorinated terthiophene (BDT-Th-3T) or alkylter-thiophene (BDT-Th-3AT). When deposited onto an ITO/polyethylenimine ethoxylated (PEIE) substrate, both copolymer thin films render apparent face-on orientations as indicated in two-dimensional grazing incidence X-ray diffraction (2D-GIXD) results, and especially among them, BDT-Th-3T thin films show much im-proved crystalline properties. This is because the molecular structure of BDT-Th-3T shows a higher molecular planarity induced by non-covalent intramolecular interaction and small steric hindrance, which are proved from UV-Vis-NIR absorption and Raman spectroscopy studies, respectively. BDT-Th-3T polymers effective-ly maintain their crystalline properties when are blended with non-fullerene acceptors and form a bulk hetero-junction (BHJ) of a percolating network composed of face-on-oriented donors and acceptors, which is favor-able for charge carrier transports in a vertical direction of the device. As a result, the optimized OPD shows a high specific detectivity over 10^13 jones and an unprecedentedly wide LDR of 232 dB. It is demonstrated that the wide LDR is originated from high charge transporting property of the polymer, which induces a high saturation photocurrent of BHJ -
dc.description.statementofresponsibility Y -
dc.description.tableofcontents Ⅰ. Introduction 1
Ⅱ. Results and Discussions 4
Ⅲ. Conclusion 13
Ⅳ. Experimental Section 14
4.1 Materials 14
4.2 Device fabrication 14
4.3 Thin film characterization 14
4.4 Device characterization 15
Ⅴ. Supporting information 16
Ⅵ. References 20
국문요약 24
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dc.format.extent 24 -
dc.language eng -
dc.publisher DGIST -
dc.subject Odor, Self, Face, ERP, EEG, Sex, BMI, Self-esteem, 광다이오드, 선형 동적범위, 광전자 디바이스, 박막, 전하 이동도 -
dc.title High performance Organic Photodiode with Wide Linear Dynamic Range: The Role of Crystalline Orientation -
dc.title.alternative 넓은 선형 동적범위를 가진 고성능 유기물 광다이오드: 결정 방향의 역할 -
dc.type Thesis -
dc.identifier.doi 10.22677/thesis.200000361898 -
dc.description.alternativeAbstract 본 논문은 새로운 고분자 반도체를 이용하여 넓은 선형 동적범위를 구현하는 유기물 광다이오드 개발을 구현한다. alkylthio-substituted benzo[1,2-b:4,5-b’]dithiophene (BDT]를 기반으로 하는 공중 합체 고분자는 fluorinated terthiophene (BDT-Th-3T] 또는 alkylter-thiophene (BDT-Th-3AT]와 합성한 새로운 고분자이다. 이 공중합체 고분자들은 2D-GIXD 분석결과에서 알 수 있듯이ITO/PEIE 기판 위에서 뚜렷한 face-on 배열 방향을 보였으며 특히, BDT-Th-3T 박막은 향상된 결정성을 보였다. 이는 UV-vis-NIR 흡광 분석과 라만 분광학 분석으로부터 알 수 있듯이 BDT-Th-3T의 분자구조의 평면성으평부터 유도되는 비동분자 내 상호작용 및 작은 입체 방해효과의 영향이다. BDT-Th-3T 고분자는 non-fullerene 전자 받개와 혼합되어서도 결정성이 효율적으로 유지되었으며 전자 받개와 전자 주개 모두 수직 구조의 디바이스에서 선호하는 face-on 구조로 형성되어 전하 이동에 유리한 면을 보였다. 그 결과, 최적화된 유기물 광다이오드는 10^13 jones가 넘는 높은 검출능과 232dB의 매우 높은 선형 동적범위를 구현하였다. 이 연구 결과는 차세대 이미지 센서의 유기물 반도체 적용에 있어 더욱 넓은 범위의 이미지 센서 적용에 도움이 될 것이다. -
dc.description.degree Master -
dc.contributor.department Energy Science & Engineering -
dc.contributor.coadvisor Chiyoung Park -
dc.date.awarded 2021/02 -
dc.publisher.location Daegu -
dc.description.database dCollection -
dc.citation XT.EM 고94 202102 -
dc.contributor.alternativeDepartment 에너지공학전공 -
dc.contributor.affiliatedAuthor Hyunki Ko -
dc.contributor.affiliatedAuthor Jongmin Choi -
dc.contributor.affiliatedAuthor Chiyoung Park -
dc.contributor.alternativeName 고현기 -
dc.contributor.alternativeName Jongmin Choi -
dc.contributor.alternativeName 박치영 -
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Department of Energy Science and Engineering Theses Master

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