研究生: |
蔡仁靜 Tsai, Jen-Ching |
---|---|
論文名稱: |
吸水性蠶絲蛋白為介電層之靛藍雙載子有機薄膜電晶體評估 Evaluation of silk fibroin as hygroscopic gate dielectric for indigo ambipolar Bio-OTFTs |
指導教授: |
黃振昌
Hwang, Jenn-Chang |
口試委員: |
冉曉雯
Zan, Hsiao-Wen 龔志榮 Gong, J. R. |
學位類別: |
碩士 Master |
系所名稱: |
工學院 - 材料科學工程學系 Materials Science and Engineering |
論文出版年: | 2014 |
畢業學年度: | 102 |
語文別: | 中文 |
論文頁數: | 59 |
中文關鍵詞: | 蠶絲蛋白 、靛藍 、吸水性介電層 |
外文關鍵詞: | silk fibroin, indigo, hygroscopic dielectric |
相關次數: | 點閱:3 下載:0 |
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蠶絲蛋白 (silk fibroin) 由蠶繭脫膠後萃取而得,靛藍 (indigo, C16H10N2O2)是常用於衣物染色之天然染料,已有文獻描述具雙載子特性。本實驗以水溶液製程蠶絲蛋白為介電層、熱蒸鍍靛藍薄膜為半導體,製備生物相容有機薄膜電晶體,並評估於不同環境濕度下元件電性表現。靛藍薄膜結晶性可藉由TTC
(Tetratetracontane, C44H90) 層間層加入而改善,並使元件表現雙載子特性。真空下,元件p 型及n 型飽和區載子遷移率分別為9 × 10−5與0.05cm2V−1s−1,臨介電壓 (Vth) 分別為-90V 與80V;有高的n 型載子遷移率,但與p 型載子遷移率差異大,且操作偏壓高。於相對濕度20% ~ 50%下量測元件電性,發現在濕度30%下,元件有相近的n 型與p 型載子遷移率約為10−2cm2V−1s−1,臨
介電壓約為±60V,是合適的元件操作濕度。若於濕度50%下量測元件,雖臨介電壓降至約為±30V,但n 型載子遷移率下降至10−3cm2V−1s−1。蠶絲蛋白組成胺基酸包括:絲胺酸 (Serine)、丙胺酸 (Alanine)、甘胺酸 (Glycine);其中,絲胺酸為極性胺基酸、氮氧原子上孤對電子、蛋白質碳端與氮端皆可能是使蠶絲蛋白具吸水性原因。含水環境下蠶絲蛋白介電層累積載子能力增加,而靛藍半導體則降低傳輸,推測所觀察之電性隨濕度變化為兩因素之抗衡。遲滯曲線量測結果為反向掃描汲極電流大於正向掃描電流,含水環境下遲滯曲線較真空下減少許多。
Silk fibroin is a natural protein extracted from Cocoons of Bombyx mori.
Indigo (C16H10N2O2) is a natural dye pigment used extensively on commodities and
has been reported to have ambipolar transport characteristics. The objective of this
work is to fabricate Bio-organic thin film transistors (Bio-OTFTs) by integrating
thermal evaporated indigo thin film and solution-based silk fibroin and to evaluate
the performance of ambipolar devices at different relative humidity. The crystal
quality of indigo is improved by inserting a TTC (Tetratetracontane, C44H90)
interlayer on silk fibroin so that both the p- and n- channel transport appear
simultaneously in the indigo ambipolar Bio-OTFT. In vacuum, the operation voltage
is up to 100 V and the p- and n- channel field effect mobility (μFE,sat) are
respectively ca. 9 × 10−5 and 0.05cm2V−1s−1 in saturation region and the
threshold voltages (VTH) are ca. -90 V and 80 V, respectively. In air ambient, the
amino acid including Glycine, Serine and Alanine in silk fibroin make silk fibroin a
hygroscopic dielectric material. At 30% relative humidity, the indigo ambipolar
OTFT exhibits comparable μFE,sat of ca. 10−2cm2V−1s−1 for hole and electron.
While the relative humidity increases to ca. 50%, the VTH reduces to ca. ±30 V but
with a worse n-channel performance ca. 10−3cm2V−1s−1. Hysteresis shows a higher
back scanning current and a larger VTH shift in vacuum than in 55% relative humidity
during gate voltage sweep.
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