White particles

„White“ particles are available in a size range between 10 nm and 100 µm with different organic or inorganic matrix materials:

silica (sicastar®)
polystyrene / polymethacrylate (micromer®)

Please choose a product type for your special selection of functional groups /coatings and diameters of the particles.

Showing 1–200 of 248 results

References
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  • S. Totoki, G. Yamamoto, K. Tsumoto, S. Uchiyama and K. Fukui, Quantitative Laser Diffraction Method for the Assessment of Protein Subvisible Particles, Journal of Pharmaceutical Sciences, 2015, 104(2), 618–626;
  • P. H. D. da Fonseca, W. D. T. Antunes and S. I. P. C. de Freitas, Characterisation of bacterial-nanoparticle interactions via STORM and SEM: Optimising magnetic labelling strategies for biosensor integration, Sensors and Actuators Reports, 2025, 100430;
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  • E. Guthaus, M. Bürgle, N. Schmiedeberg, S. Hocke, A. Eickler, M. D. Kramer, C. G. J. F. Sweep, V. Magdolen, H. Kessler and M. Schmitt, uPA-Silica-Particles (SP-uPA): A novel analytical system to investigate uPA-uPAR-interaction and to test synthetic uPAR-antagonists as potential cancer therapeutics, Biolog. Chem., 2002, 383(1), 207–216;
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  • L. Pang, K. Farkas, G. Bennett, A. Varsani, R. Easingwood, R. Tilley, U. Nowostawska and S. Lin, Mimicking filtration and transport of rotavirus and adenovirus in sand media using DNA-labeled, protein-coated silica nanoparticles, Water research, 2014, 62(167–179;
  • M. M. Tholen, B. J. Rosier, R. T. Vermathen, C. A. Sewnath, C. Storm, L. Woythe, C. Izquierdo-Lozano, R. Riera, M. van Egmond and M. Merkx, Mapping antibody domain exposure on nanoparticle surfaces using dna-paint, ACS nano, 2023, 17(12), 11665–11678;
  • K. Isobe, A. Suda, H. Hashimoto, F. Kannari and e. al., High-resolution fluorescence microscopy based on a cyclic sequential multiphoton process, Biomedical Optics Express, 2010, 1(3), 791–797;
  • D. M. Suter, A. W. Schaefer and P. Forscher, Microtubule dynamics are necessary for src family kinase-dependent growth cone steering, Current Biology, 2004, 14(1194–1199;
  • O. Staufer, K. Gupta, J. E. Hernandez Bücher, F. Kohler, C. Sigl, G. Singh, K. Vasileiou, A. Yagüe Relimpio, M. Macher and S. Fabritz, Synthetic virions reveal fatty acid-coupled adaptive immunogenicity of SARS-CoV-2 spike glycoprotein, Nature communications, 2022, 13(1), 1–13;
  • A. Volpato, D. Ollech, J. Alvelid, M. Damenti, B. Muller, A. G. York, M. Ingaramo and I. Testa, Extending fluorescence anisotropy to large complexes using reversibly switchable proteins, Nat Biotechnol, 2023, 41(4), 552–559;
  • F. Luderer, M. Löbler, H. W. Rohm, C. Gocke, K. Kunna, K. Köck, H. K. Kroemer, W. Weitschies, K.-P. Schmitz and K. Sternberg, Biodegradable Sirolimus- loaded Poly(lactide) Nanoparticles as Drug Delivery System for the Prevention of In-Stent Restenosis in Coronary Stent Application, J. Biomater. Appl., 2011, 25(851–875;
  • Y. Mima, S. Fukumoto, H. Koyama, M. Okada, S. Tanaka, T. Shoji, M. Emoto, T. Furuzono, Y. Nishizawa and M. Inaba, Enhancement of cell-based therapeutic angiogenesis using a novel type of injectable scaffolds of hydroxyapatite-polymer nanocomposite microspheres, PLoS One, 2012, 7(4), e35199;
  • S. Moeller, R. Kegler, K. Sternberg and R. G. Mundkowski, Influence of sirolimus-loaded nanoparticles on physiological functions of native human polymorphonuclear neutrophils, Nanomedicine: Nanotechnology, Biology and Medicine, 2012, 8(8), 1293–1300;
  • A. Weidmann, S. Kwittner, R. Beck, J. Teller, L. Jonas and B. J. Nebe, Prevention of Lens Epithelial Cell Growth In Vitro Using Mibefradil- Containing PLGA Micro Particles, The Open Ophthalmology Journal, 2008, 2(112– 118;
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