Department of Materials Science and NanoEngineering, Rice University , Houston, Texas 77005, United States.
Center for Optics, Photonics and Lasers (COPL), Department of Chemistry, Laval University , Ville de Québec, Québec, Canada , G1 V 0A6.
Nano Lett. 2016 Nov 9;16(11):6939-6945. doi: 10.1021/acs.nanolett.6b02946. Epub 2016 Oct 11.
The internal structure of hollow AgAu nanorods created by partial galvanic replacement was manipulated reversibly, and its effect on optical properties was mapped with nanometer resolution. Using the electron beam in a scanning transmission electron microscope to create solvated electrons and reactive radicals in an encapsulated solution-filled cavity in the nanorods, Ag ions were reduced nearby the electron beam, reshaping the core of the nanoparticles without affecting the external shape. The changes in plasmon-induced near-field properties were then mapped with electron energy-loss spectroscopy without disturbing the internal structure, and the results are supported by finite-difference time-domain calculations. This reversible shape and near-field control in a hollow nanoparticle actuated by an external stimulus introduces possibilities for applications in reprogrammable sensors, responsive materials, and optical memory units. Moreover, the liquid-filled nanorod cavity offers new opportunities for in situ microscopy of chemical reactions.
通过部分电替换方法创造的中空 AgAu 纳米棒的内部结构可以被可逆地操纵,其对光学性质的影响可以用纳米分辨率来绘制。利用扫描透射电子显微镜中的电子束在纳米棒中充满溶液的封装腔中产生溶剂化电子和反应性自由基,使得 Ag 离子在电子束附近被还原,从而重塑纳米颗粒的核心,而不影响其外部形状。然后,利用电子能量损失光谱无扰地绘制等离子体诱导近场特性的变化,并用有限差分时域计算进行支持。这种在外部刺激下驱动的中空纳米颗粒的可逆形状和近场控制为在可重编程传感器、响应材料和光学存储单元中的应用开辟了可能性。此外,充满液体的纳米棒腔为原位观察化学反应提供了新的机会。