Department of Mechanical Engineering, University of California Riverside, Riverside, CA, USA.
J Biomed Mater Res A. 2021 Dec;109(12):2483-2492. doi: 10.1002/jbm.a.37242. Epub 2021 Jun 7.
In this work, we present an extensive comparative study between novel titanium nitride nanoparticles (TiN NPs) and commercial gold nanorods (GNR), both dispersed in water and exposed to a pulsed laser-induced cavitation process. The optical density, shockwave emission, and bubble formation of these solutions were investigated using shadowgraphy, spatial transmittance modulation, and acoustic measurements. TiN nanoparticle solutions exhibited high stability undser a periodic nanosecond pulsed-laser irradiation, making these nanomaterials promising agents for high-power applications. In addition, they demonstrated a stronger nonlinear absorption compared to the GNR solutions, and plasma formation at lower laser energies. This study advances our understanding of the optical properties of TiN and discusses significant differences compared to gold, with important implications for future applications of this material in water treatment, nonlinear signal converting, and laser-induced cavitation for medical implementations, among others.
在这项工作中,我们对新型氮化钛纳米粒子(TiN NPs)和商业金纳米棒(GNR)进行了广泛的比较研究,这两种纳米粒子均分散在水中,并暴露于脉冲激光诱导空化过程中。使用阴影摄影术、空间透射调制和声学测量研究了这些溶液的光密度、冲击波发射和气泡形成。TiN 纳米粒子溶液在周期性纳秒脉冲激光照射下表现出高稳定性,这使得这些纳米材料成为高功率应用的有前途的试剂。此外,与 GNR 溶液相比,它们表现出更强的非线性吸收,并且在更低的激光能量下形成等离子体。这项研究增进了我们对 TiN 光学性质的理解,并讨论了与金的显著差异,这对该材料在水处理、非线性信号转换以及医学应用中的激光诱导空化等方面的未来应用具有重要意义。