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Tunable chiroptical response of chiral system composed of a nanorod coupled with a nanosurface

机译:由纳米棒与纳米表面耦合组成的手性系统的可调手性响应

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Artificially engineered chiral plasmonic nanostructures (CPNs) have attracted considerable attention and have been widely studied in the recent decades because of their distinguishing optical properties. Researchers have focused on noble metal nanostructures, because of their strong chiroptical response in visible and near-infrared regions. In this study, a system of a nanorod coupled with a nanosurface, which were both made of silver, was proposed. Glancing angle deposition (GLAD) method was used to fabricate CPNs. The fabricated CPNs generated a strong circular dichroism (CD) signal under visible and near-infrared light illumination. A high peak was observed at approximately 600 nm, and an increasing trend of the CD intensity with a redshift was confirmed when the area of the nanosurface was increased. The generated CD could be tuned easily by changing the area of the nanosurface with an active control of the vapor deposition angle (glancing angle of the substrate) in the GLAD method.
机译:人工设计的手性等离激元纳米结构(CPNs)已引起了相当大的关注,并且由于其独特的光学特性,最近几十年来已得到广泛研究。由于其在可见光和近红外区域的强烈的手性响应,研究人员一直专注于贵金属纳米结构。在这项研究中,提出了均由银制成的与纳米表面耦合的纳米棒系统。掠角沉积(GLAD)方法用于制造CPN。制成的CPN在可见光和近红外光照射下产生了很强的圆二色性(CD)信号。在约600nm处观察到高峰,并且当纳米表面的面积增加时,证实了CD强度随着红移而增加的趋势。在GLAD方法中,通过主动控制气相沉积角(基板的掠入角),可以通过改变纳米表面的面积来轻松调整生成的CD。

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