Accurate Measurement of Nanoparticles By Using Multi-angle Dynamic Light Scattering
SUN Miao1,2,HUANG Lu1,GAO Si-tian1,WANG Zhi1,2,DONG Ming-Li2
1. National Institute of Metrology, Beijing 100029, China
2. Instrument Science and Optoelectronic Engineering College, Beijing Information Science and Technology University, Beijing 100192, China
Abstract:Based on the principle of dynamic light scattering, an independent multi-angle dynamic light scattering device was used to investigate the accurate measurement methods of nano and submicron particle size. The precision incident light path design with diaphragm group, matching liquid pool and beam-stop design were adopted in the self-developed device, which greatly improved the signal-to-noise ratio. At the same time, the interference of the reflected light signal caused by the different refractive index between the sample cell and the air interface in the complementary direction of the measurement angle was avoided. On this basis, the polystyrene (PS) particle solution with different concentration and particle size was determined and its uncertainty was analyzed. The results showed that for PS particles with the same particle size, multiple scattering first occurs at large and small measurement angles when the particle concentration is increased. The closer to 90°, the higher the multiple scattering concentration is. With the increase of particle size, the particle size measurement results showed a strong angular dependence and even volatility due to the non-negligible interaction between particles.
[1]马岚, 李冰, 陈建平, 等. 纳米技术在药物领域中的应用 [J]. 内蒙古医科大学学报, 2018, 40(5): 536-541.
Ma L, Li B, Chen J P, et al. Application of nanotechnology in the field of medicine [J]. [WTBX][STBX]Journal of Inner Mongolia Medical University[STBZ][WTBZ], 2018, 40(35): 536-541.
[2]郭亮亮, 许洋, 曹碧辉. 纳米涂料与涂层技术的应用 [J]. 化工设计通讯, 2018, 44(9): 48-48.
Guo L L, Xu Y, Cao B H. Application of nano coatings and coating technology [J]. [WTBX][STBX]Chemical Design Communications[STBZ][WTBZ], 2018, 44(9): 48-48.
[3]赵清俊, 孙海. 纳米技术在生物制药领域的创新绩效研究 [J]. 企业经济, 2012, (7): 48-48.
Zhao Q J, Sun H. Research on innovation performance of nanotechnology in the field of biopharma [J]. [WTBX][STBX]Enterprise Economics[STBZ][WTBZ], 2012, (7): 48-48.
[4]樊东黎. 纳米技术和纳米材料的发展和应用 [J]. 金属热处理, 2011, 36(2): 125-132.
Fan D L. Development and application of nanotechnologies and nano-materals [J]. [WTBX][STBX]Heat Treatment of Metals[STBZ][WTBZ], 2011, 36(2): 125-132.
[5]胡伟武, 冯传平. 纳米材料和纳米技术在环境保护方面的应用 [J]. 化工新型材料, 2007, 35(30): 14-16.
Hu W W, Feng C P. Application of nanometer materials & nanotechnology in environmental protection [J]. [WTBX][STBX]New Chemical Materials[STBZ][WTBZ], 2007, 35(30): 14-16.
[6]Ohno T, Tagawa S, Itoh H, et al. Size effect of TiO2-SiO2 nano-hybrid particle [J]. [WTBX][STBX]Materials Chemistry & Physics[STBZ][WTBZ], 2009, 113(1): 119-123.
[7]Chithrani B D, Ghazani A A, Chan W C, et al. Determining the size and shape dependence of gold nanoparticle uptake into mammalian cells [J]. [WTBX][STBX]Nano Letters[STBZ][WTBZ], 2006, 6(4): 662-668.
[8]Sun X, Liu Z, Welshe K, et al. Nano-graphene oxide for cellular imaging and drug delivery [J]. [WTBX][STBX]Nano Research[STBZ][WTBZ], 2008, 1(3): 203-212.
[9]王乃宁. 颗粒粒径的光学测量方法[M]. 北京: 原子能出版社, 2000.
[10]顾彩香, 李庆柱, 李磊, 等. 几种测量纳米粒子粒径方法的比较研究 [J]. 机械设计, 2008, 25(5): 12-14.
Gu C X, Li Q Z, Li L, et al. Comparative study of several methods for measuring particle size of nanoparticles [J]. [WTBX][STBX]Mechanical Design[STBZ][WTBZ], 2008, 25(5): 12-14.
[11]施玉书, 连笑怡, 王艺瑄, 等. AFM扫描过程的模拟及针尖形状反求 [J]. 计量学报, 2019, 40 (2): 177-182.
Shi Y S, Lian X Y, Wang Y X, et al. Simulation of AFM scanning process and inverse calculation of tip shape [J]. [WTBX][STBX]Acta Metrologica Sinica[STBZ][WTBZ], 2019, 40(2): 177-182.
[12]顾彩香, 李庆柱, 李磊, 等. 动态光散射及电子显微镜纳米颗粒测量方法的比较研究 [J]. 光散射学报, 2015, 27(1): 54-58.
Gu C X, Li Q Z, Li L, et al. Comparative study of dynamic light scattering and electron microscope nanoparticle measurement methods [A]. [WTBX][STBX]Journal of Light Scattering[STBZ][WTBZ], 2015, 27(1): 54-58.
[13]尚玉峰, 蒋达娅, 肖井华, 等. 动态光散射实验 [J]. 物理实验, 2004, 24(10): 9-11.
Shang Y F, Jiang D Y, Xiao J H, et al. Dynamic light scattering experiment [A]. [WTBX][STBX]Physics Experiment[STBZ][WTBZ], 2004, 24(10): 9-11.
[14]贾楠, 顾建飞, 苏明旭. 基于超声谱分析的颗粒粒度测量研究 [J]. 计量学报, 2019, 40 (3): 466-471.
Jia N, Gu J F, Su M X. Particle size measurement based on ultrasonic spectrum analysis [J]. [WTBX][STBX]Acta Metrologica Sinica[STBZ][WTBZ], 2019, 40(3): 466-471.
[15]Takahashi K, Kato H, Kinugasa S. Development of a Standard Method for Nanoparticle Sizing by Using the Angular Dependence of Dynamic Light Scattering [J]. [WTBX][STBX]Analytical Sciences[STBZ][WTBZ], 2011, 27(7): 751-756.
[16]Li L, Yu L, Yang K C, et al. Angular dependence of multiangle dynamic light scattering for particle size distribution inversion using a self-adapting regularization algorithm [J]. [WTBX][STBX]Journal of Quantitative Spectroscopy & Radiative Transfer[STBZ][WTBZ], 2018, 209(1): 91-102.
[17]刘俊杰, 国凯, 邢化朝. 动态光散射法测量颗粒粒径的溯源性 [J]. 化学分析计量, 2014, 23(5): 95-98.
Liu J J, Guo K, Xing H Z. Measurement of particle size traceability by dynamic light scattering method [J]. [WTBX][STBX]Chemometrics[STBZ][WTBZ], 2014, 23(5): 95-98.
[18]Takahashi K, Kato H, Saito T, et al. Precise Measurement of the Size of Nanoparticles by Dynamic Light Scattering with Uncertainty Analysis [J]. [WTBX][STBX]Particle & particle systems characterization[STBZ][WTBZ], 2008, 25(1):31-38.
[19]刘晓艳, 申晋, 朱新军, 等. 动态光散射技术的角度依赖性 [J]. 光学学报, 2012, 32(6): 267-272.
Liu X Y, Shen J, Zhu X J, et al. Angular dependence of dynamic light scattering technology [J]. [WTBX][STBX]Acta Optica Sinica[STBZ][WTBZ], 2012, 32(6): 267-272.
[20]周建华, 房怀英, 杨建红, 等. 图像法集料粒径检测表征参数的选择及实验研究 [J]. 计量学报, 2018, 39 (6): 783-790.
Zhou J H, Fang H Y, Yang J h, et al. Selection of characterization parameters for image aggregate particle size detection and experimental research [J]. [WTBX][STBX]Acta Metrologica Sinica[STBZ][WTBZ], 2018, 39 (6): 783-790.