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العنوان
Tailoring device-scale properties in organic electronics Morphological, optical and electrode-interface related approaches /
المؤلف
Ismail, Moneim Reda.
هيئة الاعداد
باحث / منعم رضا عبدالمنعم اسماعيل
مشرف / كريستين كونستانت
مشرف / سكوت بيكمان
مشرف / فيكرام دلال
مشرف / رنا بيسواس
الموضوع
Organic materials. Solar cells. Transistor.
تاريخ النشر
2015.
عدد الصفحات
131 p. :
اللغة
الإنجليزية
الدرجة
الدكتوراه
التخصص
الفيزياء والفلك (المتنوعة)
تاريخ الإجازة
01/01/2015
مكان الإجازة
جامعة المنصورة - كلية العلوم - Department of Physics.
الفهرس
Only 14 pages are availabe for public view

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Abstract

In chapter one, a schematic showing the organization of this dissertation is presented. In the same chapter, a general introduction on organic materials and thin-films is also discussed. Furthermore, the architecture and basic operation of OPV, OFET and OLED devices are considered. Chapter two discusses the possibility of fabricating new OPV devices on previously used Indium-Tin-Oxide (ITO) substrates, which went through prior device processing with popular acidic interfacial layer PEDOT:PSS. We show that, contrary to the concerns in the literature, only the top few nanometers of ITO are etched by PEDOT:PSS in typical device processing and storage thereafter. Conductivity losses are offset by transmission gains leading to an increased power conversion efficiencies for PTB7-based OPVs on used ITO substrates com- pared to devices on fresh ITO. In chapter three, we introduce a generic morphology tuning technique with anisotropic applicability-exposure to static electric-field (E-field) gradient during the solidification of solution- processed polymeric thin-films. This technique improves the connectivity between polymer chains ; by changing the E-field direction, radiative pathways in polymeric thin-films can be altered, charge transport in- and out-of-plane can be improved, and phase-separation in polymer- fullerene blends can be coarsened in the bulk and perpendicular to the substrate. In exemplary cases, we improved the hole mobility in OFETs, power conversion efficiency in OPVs, and electroluminescence efficiency in OLEDs. In the last part of this dissertation, we studied the effect of using microlens array (MLA) to increase the light absorption inside the active-layer of OPVs. Our MLA approach does not hinder the fabrication of the OPV because MLA lies on the non-conductive side of the ITO glass. In chapter four, we initially investigated the effect of using MLA with 2000 nm feature size. We found that thick (P3HT :PCBM) and thin (PCDTBT :PCBM) OPVs exhibit an improved short-circuit current. This enhancement stems from the increased light path coupled with the constructive interference patterns inside the OPV photoactive layer. In chapter five, we used MLAs with smaller feature sizes. In addition to feature size of 2 micrometer, 1.5 micrometer, 1 micrometer and 0.6 micrometer MLAs were also investigated. The experimental and simulations results show agreement on an increased light absorption inside the photoactive layer; improved current-density and PCE were realized for PTB7:PCBM and PCDTBT:PCBM OPVs (w.r.t. control) using 1 micrometer and 1.5 micrometer feature size MLAs, respectively.