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Original Articles

Fractal scaling of coated soot aggregates

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Pages 12-19 | Received 30 May 2016, Accepted 11 Oct 2016, Published online: 08 Nov 2016

References

  • Adachi, K., and Buseck, P. R. (2008). Internally Mixed Soot, Sulfates, and Organic Matter in Aerosol Particles from Mexico City. Atmos. Chem. Phys., 8(21):6469–6481.
  • Adachi, K., Chung, S. H., and Buseck, P. R. (2010). Shapes of Soot Aerosol Particles and Implications for their Effects on Climate. J. Geophys. Res. Atmospheres, 115:D15206.
  • Cai, J., Lu, N., and Sorensen, C. M. (1993). Comparison of Size and Morphology of Soot Aggregates as Determined by Light Scattering and Electron Microscope Analysis. Langmuir, 9(11):2861–2867.
  • Cai, J., Lu, N., and Sorensen, C. M. (1995). Analysis of Fractal Cluster Morphology Parameters: Structural Coefficient and Density Autocorrelation Function Cutoff. J. Colloid Interface Sci., 171(2):470–473.
  • Cappa, C. D., Onasch, T. B., Massoli, P., Worsnop, D. R., Bates, T. S., Cross, E. S., Davidovits, P., Hakala, J., Hayden, K. L., Jobson, B. T., Kolesar, K. R., Lack, D. A., Lerner, B. M., Li, S. M., Mellon, D., Nuaaman, I., Olfert, J. S., Petaja, T., Quinn, P. K., Song, C., Subramanian, R., Williams, E. J., and Zaveri, R. A. (2012). Radiative Absorption Enhancements Due to the Mixing State of Atmospheric Black Carbon. Science, 337(6098):1078–1081.
  • Chakrabarty, R. K., Garro, M. A., Garro, B. A., Chancellor, S., Moosmueller, H., and Herald, C. M. (2011a). Simulation of Aggregates with Point-Contacting Monomers in the Cluster-Dilute Regime. Part 1: Determining the Most Reliable Technique for Obtaining Three-Dimensional Fractal Dimension from Two-Dimensional Images. Aerosol Sci. Technol., 45(1):75–80.
  • Chakrabarty, R. K., Garro, M. A., Garro, B. A., Chancellor, S., Moosmueller, H., and Herald, C. M. (2011b). Simulation of Aggregates with Point-Contacting Monomers in the Cluster-Dilute Regime. Part 2: Comparison of Two- and Three-Dimensional Structural Properties as a Function of Fractal Dimension. Aerosol Sci. Technol., 45(8):903–908.
  • Chakrabarty, R. K., Moosmüller, H., Garro, M. A., and Stipe, C. B. (2012). Observation of Superaggregates from a Reversed Gravity Low-Sooting Flame. Aerosol Sci. Technol., 46(1):i–iii.
  • China, S., Mazzoleni, C., Gorkowski, K., Aiken, A. C., and Dubey, M. K. (2013). Morphology and Mixing State of Individual Freshly Emitted Wildfire Carbonaceous Particles. Nat. Commun., 4:2122.
  • Dhaubhadel, R., Pierce, F., Chakrabarti, A., and Sorensen, C. M. (2006). Hybrid Superaggregate Morphology as a Result of Aggregation in a Cluster-Dense Aerosol. Phys. Rev. E, 73(1). Retrieved from http://link.aps.org/doi/10.1103/PhysRevE.73.011404
  • Dzepina, K., Mazzoleni, C., Fialho, P., China, S., Zhang, B., Owen, R. C., Helmig, D., Hueber, J., Kumar, S., Perlinger, J. A., Kramer, L. J., Dziobak, M. P., Ampadu, M. T., Olsen, S., Wuebbles, D. J., and Mazzoleni, L. R. (2015). Molecular Characterization of Free Tropospheric Aerosol Collected at the Pico Mountain Observatory: A Case Study with a Long-Range Transported Biomass Burning Plume. Atmos. Chem. Phys., 15(9):5047–5068.
  • Grahame, T. J., Klemm, R., and Schlesinger, R. B. (2014). Public Health and Components of Particulate Matter: The Changing Assessment of Black Carbon. J. Air Waste Manage. Assoc., 64(6):620–660.
  • Haywood, J. M., and Ramaswamy, V. (1998). Global Sensitivity Studies of the Direct Radiative Forcing Due to Anthropogenic Sulfate and Black Carbon Aerosols. J. Geophys. Res.: Atmos., 103(D6):6043–6058.
  • Heinson, W. R., Chakrabarti, A., and Sorensen, C. M. (2015). Divine Proportion Shape Invariance of Diffusion Limited Cluster–Cluster Aggregates. Aerosol Sci. Technol., 49(9):786–792.
  • Heinson, W. R., Sorensen, C. M., and Chakrabarti, A. (2010). Does Shape Anisotropy Control the Fractal Dimension in Diffusion-Limited Cluster–Cluster Aggregation? Aerosol Sci. Technol., 44(12):i–iv.
  • Heinson, W. R., Sorensen, C. M., and Chakrabarti, A. (2012). A Three-Parameter Description of the Structure of Diffusion Limited Cluster Fractal Aggregates. J. Colloid Interface Sci., 375:65–69.
  • Janssen, N. A., Gerlofs-Nijland, M. E., Lanki, T., Salonen, R. O., Cassee, F., Hoek, G., Fischer, P., Brunekreef, B., and Krzyzanowski, M. (2012). Health Effects of Black Carbon. Denmark: WHO Regional Office for Europe Copenhagen.
  • Jullien, R., and Botet, R. (1987). Aggregation and Fractal Aggregates. Singapore: World Scientific Pub. Co. Inc..
  • Kaufman, Y. J., Tanré, D., and Boucher, O. (2002). A Satellite View of Aerosols in the Climate System. Nature, 419(6903):215–223.
  • Lapuerta, M., Martos, F. J., and Martin-Gonzalez (2010). Geometrical Determination of the Lacunarity of Agglomerates with Integer Fractal Dimension. J. Colloid. Interface Sci., 346(1):23–31.
  • Liu, C., Yin, Y., Hu, F., Jin, H., and Sorensen, C. M. (2015). The Effects of Monomer Size Distribution on the Radiative Properties of Black Carbon Aggregates. Aerosol Sci. Technol., 49(10):928–940.
  • Liu, P., and Chakrabarty, R. K. (2016). Sensitivity Analysis of Aggregate Morphology on Mass–Mobility Relationship and Improved Parameterizations. Aerosol Sci. Technol., 50(1):63–70.
  • Liu, S., Aiken, A. C., Gorkowski, K., Dubey, M. K., Cappa, C. D., Williams, L. R., Herndon, S. C., Massoli, P., Fortner, E. C., Chhabra, P. S., Brooks, W. A., Onasch, T. B., Jayne, J. T., Worsnop, D. R., China, S., Sharma, N., Mazzoleni, C., Xu, L., Ng, N. L., Liu, D., Allan, J. D., Lee, J. D., Fleming, Z. L., Mohr, C., Zotter, P., Szidat, S., and Prévôt, A. S. H. (2015). Enhanced Light Absorption by Mixed Source Black and Brown Carbon Particles in UK Winter. Nat. Commun., 6:8435.
  • Loh, N. D., Hampton, C. Y., Martin, A. V., Starodub, D., Sierra, R. G., Barty, A., Aquila, A., Schulz, J., Lomb, L., Steinbrener, J., Shoeman, R. L., Kassemeyer, S., Bostedt, C., Bozek, J., Epp, S. W., Erk, B., Hartmann, R., Rolles, D., Rudenko, A., Rudek, B., Foucar, L., Kimmel, N., Weidenspointner, G., Hauser, G., Holl, P., Pedersoli, E., Liang, M., Hunter, M. S., Gumprecht, L., Coppola, N., Wunderer, C., Graafsma, H., Maia, F. R. N. C., Ekeberg, T., Hantke, M., Fleckenstein, H., Hirsemann, H., Nass, K., White, T. A., Tobias, H. J., Farquar, G. R., Benner, W. H., Hau-Riege, S. P., Reich, C., Hartmann, A., Soltau, H., Marchesini, S., Bajt, S., Barthelmess, M., Bucksbaum, P., Hodgson, K. O., Strüder, L., Ullrich, J., Frank, M., Schlichting, I., Chapman, H. N., and Bogan, M. J. (2012). Fractal Morphology, Imaging and Mass Spectrometry of Single Aerosol Particles in Flight. Nature, 486(7404):513–517.
  • Ma, X., Zangmeister, C. D., Gigault, J., Mulholland, G. W., and Zachariah, M. R. (2013). Soot Aggregate Restructuring During Water Processing. J. Aerosol Sci., 66:209–219.
  • Meakin, P. (1985). Off Lattice Simulations of Cluster Cluster Aggregation in Dimensions 2–6. Phys. Lett. A, 107(6):269–272.
  • Meakin, P. (1988). Fractal Aggregates. Adv. Colloid Interface Sci., 28(4):249–331.
  • Meakin, P. (1999). A Historical Introduction to Computer Models for Fractal Aggregates. J. Sol–Gel Sci. Technol., 15(2):97–117.
  • Miljevic, B., Surawski, N. C., Bostrom, T., and Ristovski, Z. D. (2012). Restructuring of Carbonaceous Particles Upon Exposure to Organic and Water Vapours. J. Aerosol Sci., 47:48–57.
  • Mishchenko, M. I., Cairns, B., Hansen, J. E., Travis, L. D., Burg, R., Kaufman, Y. J., Martins, J. V., and Shettle, E. P. (2004). Monitoring of Aerosol Forcing of Climate from Space: Analysis of Measurement Requirements. J. Quantum Spectrosc. Radiat. Transfer, 88(1–3):149–161.
  • Moffet, R. C., and Prather, K. A. (2009). In-Situ Measurements of the Mixing State and Optical Properties of Soot with Implications for Radiative Forcing Estimates. Proc. Natl. Acad. Sci., 106(29):11872–11877.
  • Nicolai, T., Durand, D., and Gimel, J.-C. (1994). Static Structure Factor of Dilute Solutions of Polydisperse Fractal Aggregates. Phys. Rev. B, 50(22):16357–16363.
  • Panel on Aerosol Radiative Forcing and Climate Change. (1996). A Plan for a Research Program on Aerosol Radiative Forcing and Climate Change. Washington, DC: National Academies Press, Retrieved from http://www.nap.edu/catalog/5107
  • Peng, J., Hu, M., Guo, S., Du, Z., Zheng, J., Shang, D., Zamora, M. L., Zeng, L., Shao, M., Wu, Y., Zheng, J., Wang, Y., Glen, C. R., Collins, D. R., Molina, M. J., and Zhang, R. (2016). Markedly Enhanced Absorption and Direct Radiative Forcing of Black Carbon Under Polluted Urban Environments. PNAS, 113(16):4266–4271.
  • Saathoff, H., Naumann, K.-H., Schnaiter, M., Schöck, W., Möhler, O., Schurath, U., Weingartner, E., Gysel, M., and Baltensperger, U. (2003). Coating of Soot and (NH4)2SO4 Particles by Ozonolysis Products of α-Pinene. J. Aerosol Sci., 34(10):1297–1321.
  • Schnitzler, E. G., Dutt, A., Charbonneau, A. M., Olfert, J. S., and Jaeger, W. (2014). Soot Aggregate Restructuring Due to Coatings of Secondary Organic Aerosol Derived from Aromatic Precursors. Environ. Sci. Technol., 48(24):14309–14316.
  • Shiraiwa, M., Kondo, Y., Moteki, N., Takegawa, N., Miyazaki, Y., and Blake, D. R. (2007). Evolution of Mixing State of Black Carbon in Polluted air from Tokyo. Geophys. Res. Lett., 34(16):L16803.
  • Skorupski, K., and Mroczka, J. (2014). Effect of the Necking Phenomenon on the Optical Properties of Soot Particles. J. Quant. Spectrosc. Radiat. Transfer, 141:40–48.
  • Sorensen, C. M. (2001). Light Scattering by Fractal Aggregates: A Review. Aerosol Sci. Technol., 35(2):648–687.
  • Sorensen, C. M., Cai, J., and Lu, N. (1992). Light-Scattering Measurements of Monomer Size, Monomers per Aggregate, and Fractal Dimension for Soot Aggregates in Flames. Appl. Opt., 31(30):6547.
  • Sorensen, C. M., and Feke, G. D. (1996). The Morphology of Macroscopic Soot. Aerosol Sci. Technol., 25(3):328–337.
  • Sorensen, C. M., and Roberts, G. C. (1997). The Prefactor of Fractal Aggregates. J. Colloid Interface Sci., 186(2):447–452.
  • Spracklen, D. V., Logan, J. A., Mickley, L. J., Park, R. J., Yevich, R., Westerling, A. L., and Jaffe, D. (2007). Fires Drive Interannual Variability of Organic Carbon Aerosol in the Western U.S. in Summer. Geophys. Res. Lett., 34(16):L16816.
  • Xie, H. (2008). A Geometrical Model for Coalescing Aerosol Particles. J. Aerosol Sci., 39(3):277–285.

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