研究生: |
王大邦 Wang, Ta-Pang |
---|---|
論文名稱: |
四波混頻機制下的相干態Hong-Ou-Mandel干涉之理論與實驗研究 Experimental and Theoretical Studies of the Coherent-State Hong-Ou-Mandel Interference Based on a Four-Wave Mixing Process |
指導教授: |
余怡德
Yu, I-Te |
口試委員: |
陳應誠
Chen, Ying-Cheng 陳泳帆 Chen, Yong-Fan |
學位類別: |
碩士 Master |
系所名稱: |
理學院 - 物理學系 Department of Physics |
論文出版年: | 2018 |
畢業學年度: | 106 |
語文別: | 英文 |
論文頁數: | 120 |
中文關鍵詞: | 四波混頻 、頻率分光器 、頻率轉換 、雙光子干涉 、Hong-Ou-Mandel 干涉 |
外文關鍵詞: | four-wave mixing, frequency domain beam splitter, frequency conversion, two-photon interference, Hong-Ou-Mandel Interference |
相關次數: | 點閱:1 下載:0 |
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在本論文中,我們藉由冷原子的四波混頻效應,實現了頻率域中的 Hong-Ou-Mandel干涉實驗。利用四波混頻機制,我們可將進入原子團的780奈米(或795奈米)波長入射光轉換成780奈米及795波長奈米出射光;而藉由改變四波混頻機制中的單光子失諧(one-photon detuning),我們可以進一步控制入射光被轉換成此二種不同頻率的轉換效率。因此,本論文中所使用的四波混頻機制,可以被視為頻率域中的可調變分光器。
傳統上,Hong-Ou-Mandel干涉實驗使用兩道相同頻率的入射光。而為了進行頻率域中的Hong-Ou-Mandel干涉實驗,我們在入射光被轉換成780奈米和795奈米波長出射光的轉換效率相同時,同時送入780奈米和795奈米波長的入射光。此時兩道入射光的量子態,皆為多光子或單光子等級的coherent state。藉由分析second order correlation function g (2), 我們觀察到兩道不同頻率的出射光之間,的確藉由Hong-Ou-Mandel干涉建立了相干性。
我們藉由四波混頻機制,量測到了頻率域的Hong-Ou-Mandel干涉現象,也代表著四波混頻頻率轉換的過程,具備了高相干性─入射與出射光之間存在穩定相位關係,過程中損失的能量也甚微。因此,藉由測量頻率域的Hong-Ou-Mandel干涉現象,我們可以驗證四波混頻轉換過程,對入射訊號的高保真度。
We perform the frequency domain Hong-Ou-Mandel interference based on the four-wave mixing process in a cold rubidium system. While the four-wave mixing process converts 780 nm (or 795 nm) input light into 795 nm and 780 nm output lights, adjusting the one-photon detuning in the process allows us to change the conversion efficiencies, thus making the four-wave mixing process an adjustable frequency domain beam splitter. When the conversion efficiencies from 780 nm (or 795 nm) input light into 780 nm and 795 nm output lights are equal, we send lights with the two different frequencies into the four-wave mixing process simultaneously and conduct the frequency domain Hong-Ou-Mandel interference. Examining the second order correlation function g (2), we show that the Hong-Ou-Mandel interference does build a correlation between the two output lights with different frequencies when the input lights are either many-photon level or single-photon level coherent states. The frequency domain Hong-Ou-Mandel interference measured indicates the four-wave mixing being a coherent process with a constant input-output phase relation and low loss, suggesting a high fidelity in the frequency conversion process.
In this thesis, we illustrate the motivation in Chapter 1. The idea and theory of the normal and frequency domain Hong-Ou-Mandel interferences are shown in Chapter 2. In Chapter 3, the principle of four-wave mixing and EIT is shown. In Chapter 4, we demonstrate the principle of using four-wave mixing process to perform the frequency domain Hong-Ou-Mandel interference. In Chapter 5, the experimental setup of the four-wave mixing process is presented. In Chapter 6, we show the experimental results of frequency conversion via four-wave mixing. In Chapter 7, the optimization of the Hong-Ou-Mandel experiment along with the theoretical calculation of g (2) is demonstrated. The experimental results of the frequency domain Hong-Ou-Mandel interference are presented in Chapter 8. Finally, the conclusion and outlook are drawn in Chapter 9.
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