Commerical reference shape standards use in the study of particle shape effect on laser diffraction particle size analysis

被引:0
作者
Richard N. Kelly
Jacqueline Kazanjian
机构
[1] Yves Rocher North America Inc,
[2] Johnson & Johnson Pharmaceutical Research & Development,undefined
[3] LLC,undefined
来源
AAPS PharmSciTech | / 7卷
关键词
commercial reference shape standards; nonspherical particles; laser diffraction; equivalent spherical volume diameter; flow orientation; random orientation; mass equivalency;
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摘要
The purpose of this paper is to describe the use of LGC Promochem AEA 1001 to AEA 1003 monosized fiberanalog shape standards in the study of the effect of particle shape on laser diffraction (LD) particle size analysis (psa). The psa of the AEA standards was conducted using LD psa systems from Beckman Coulter, Horiba, and Malvern Instruments. Flow speed settings, sample refractive index values, and sample cell types were varied to examine the extent to which the shape effect on LD psa results is modified by these variables. The volume and number probability plots resulting from these measurements were each characterized by a spread in the particle size distribution that roughly extended from the breadth to the longest dimension of the particles. For most of the selected sample refractive index values, the volume probability plots were characterized by apparent bimodal distributions. The results, therefore, provide experimental verification of the conclusions from theoretical studies of LD psa system response to monosized elliptical particles in which this apparent bimodality was the predicted result in the case of flow-oriented particles. The data support the findings from previous studies conducted over the past 10 years that have called into question the verity of the tenets of, and therefore the value of the application of, the equivalent spherical volume diameter theory and the random particle orientation model to the interpretation of LD psa results from measurements made on nonspherical particles.
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[1]  
Etzler FM(1995)Particle size analysis: a comparative study of various methods Part Part Syst Charact. 12 217-224
[2]  
Sanderson MS(1997)Particle-size analysis: a comparison of various methods II Part Part Syst Charact. 14 278-282
[3]  
Etzler FM(2006)Particle-size analysis: a comparison of methods Am Pharm Rev. 7 104-108
[4]  
Deanne R(2001)Physicochemical assessments of parenteral lipid emulsions: light obscuration versus laser diffraction Int J Pharm. 21 21-37
[5]  
Etzler FM(1994)Response of laser diffraction particle sizer to anisometric particles Part Part Syst Charact. 11 121-126
[6]  
Driscoll DF(1994)Particle size determination by automated microscopical imaging analysis with comparison to laser diffraction J Pharm Sci. 84 499-501
[7]  
Etzler F(1995)Forward light scattering from sharp-edged crystals in Fraunhofer and anomalous diffraction approximations Appl Opt. 34 102-108
[8]  
Barber TA(1996)Correlation of the effect of particle shape on the size distribution measured with a laser diffraction instrument Part Part Syst Charact. 13 271-279
[9]  
Nehne J(1997)The effect of shape on intermethod correlation of techniques for characterizing the size distribution of a powder, I: correlating the size distribution measured by sieving, image analysis, and diffractometer methods Part Part Syst Charact. 14 219-255
[10]  
Niemann W(1999)The effect of shape on intermethod correlation of techniques for characterizing the size distribution of a powder, II: correlating the size distribution as measured by diffractometer methods, TSI-Amherst aerosol spectrometer, and Coulter counter Part Part Syst Charact. 16 266-273