研究生: |
朱行正 Hsin-Cheng Chu |
---|---|
論文名稱: |
水溶液加熱還原法合成二維金奈米晶體 A Thermal Aqueous Solution Approach for the Synthesis of 2-D Au Nanocrystals |
指導教授: |
黃暄益
Michael H. Huang |
口試委員: | |
學位類別: |
碩士 Master |
系所名稱: |
理學院 - 化學系 Department of Chemistry |
論文出版年: | 2005 |
畢業學年度: | 93 |
語文別: | 英文 |
論文頁數: | 63 |
中文關鍵詞: | 金奈米 二維奈米結構 片狀 |
外文關鍵詞: | gold nanoplate gold nanoprisms |
相關次數: | 點閱:1 下載:0 |
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奈米材料是近幾年來最熱門的研究題目,在奈米尺度的材料會有不同於塊材或分子的物理化學性質,不同大小、形狀的奈米材料都會影響其物理化學性質,因此吸引了全世界物理、化學、材料、生化領域的科學家投入,隨著人類對微小化材料的需求合成出大小、形狀一致的奈米材料為首要課題,在二十一世紀更小、更便宜、更快速的資料儲存、能源、生醫元件將伴隨奈米科技而誕生。
金奈米粒子會因為大小及形狀的不同而改變表面電漿共振頻率,在紫外可見光譜上有明顯變化,自奈米金被合成出來科學家便利用硫金共價健的關係把官能基或生物分子修飾上金奈米粒子,利用這些修飾過後的金奈米粒子來排列及辨識化學物質和生物分子。
本篇論文收錄的實驗系統中,我們用氯金酸(HAuCl4);檸檬酸鈉(trisodium citrate) 溴化十六烷三甲基銨 (cetyltrimethylammonium bromid);在水溶液下加熱還原合成二維金奈米晶體,改變溫度、時間、檸檬酸鈉的量可以控制不同大小的二維金奈米晶體在紫外可見光譜上可看到不同的吸收,從電子顯微鏡的分析可得知大小分佈及形狀,微米尺度的二維晶體以六角型居多奈米尺度的二維晶體以三角型為主,在結構方面經由粉末X-Ray繞射、穿透式電子顯微鏡的鑑定,這些不同大小二維金奈米晶體的表面皆是由{111}晶面構成,相較一些有關合成金奈米二維結構的文獻在水溶液系統具有方便修飾分子的優勢,我們期待這些在水溶液系統下出合出的二維金奈米晶體修飾不同的官能基之後能觀察到特別的現象。
The synthesis of gold nanoplates was carried out in an aqueous solution by thermal reduction of HAuCl4 with trisodium citrate in the presence of cetyltrimethylammonium bromide (CTAB) surfactant in just 5–40 minutes. The sizes of the gold nanoplates can be varied from as small as tens of nanometers in width, to several hundreds of nanometers, and even a few microns in width by changing the reagent concentrations, solution temperature and the reaction time. A [CTAB]/[HAuCl4] ratio of 6 in the reaction solution was found to be favorable for the formation of gold nanoplates. The nanoplates possess well-defined shapes with sharp edges. The small-sized nanoplates exhibit mainly triangular shape, while larger nanoplates show a mixture of triangular, hexagonal, truncated triangular, and other symmetrical structures. The nanoplates are composed of essentially (111) lattice planes, as revealed by both XRD and TEM results. Nanoplates with widths from several hundreds of nanometers to a few microns absorb light strongly in the near-infrared region. The growth mechanism of these nanoplates was investigated. The ability to synthesize gold nanoplates with these different size ranges in large scale in aqueous solution using simple CTAB capping surfactant should allow more diverse applications of gold nanoplates.
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