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  A comprehensive characterization of ice nucleation by three different types of cellulose particles immersed in water

Hiranuma, N., Adachi, K., Bell, D. M., Belosi, F., Beydoun, H., Bhaduri, B., et al. (2019). A comprehensive characterization of ice nucleation by three different types of cellulose particles immersed in water. Atmospheric Chemistry and Physics, 19(7), 4823-4849. doi:10.5194/acp-19-4823-2019.

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Hiranuma, Naruki1, Author
Adachi, Kouji1, Author
Bell, David M.1, Author
Belosi, Franco1, Author
Beydoun, Hassan1, Author
Bhaduri, Bhaskar1, Author
Bingemer, Heinz1, Author
Budke, Carsten1, Author
Clemen, Hans-Christian2, Author           
Conen, Franz1, Author
Cory, Kimberly M.1, Author
Curtius, Joachim1, Author
DeMott, Paul J.1, Author
Eppers, Oliver1, Author
Grawe, Sarah1, Author
Hartmann, Susan1, Author
Hoffmann, Nadine1, Author
Hoehler, Kristina1, Author
Jantsch, Evelyn1, Author
Kiselev, Alexei1, Author
Koop, Thomas1, AuthorKulkarni, Gourihar1, AuthorMayer, Amelie1, AuthorMurakami, Masataka1, AuthorMurray, Benjamin J.1, AuthorNicosia, Alessia1, AuthorPetters, Markus D.1, AuthorPiazza, Matteo1, AuthorPolen, Michael1, AuthorReicher, Naama1, AuthorRudich, Yinon1, AuthorSaito, Atsushi1, AuthorSantachiara, Gianni1, AuthorSchiebel, Thea1, AuthorSchill, Gregg P.1, AuthorSchneider, Johannes2, Author           Segev, Lior1, AuthorStopelli, Emiliano1, AuthorSullivan, Ryan C.1, AuthorSuski, Kaitlyn1, AuthorSzakall, Miklos1, AuthorTajiri, Takuya1, AuthorTaylor, Hans1, AuthorTobo, Yutaka1, AuthorUllrich, Romy1, AuthorWeber, Daniel1, AuthorWex, Heike1, AuthorWhale, Thomas F.1, AuthorWhiteside, Craig L.1, AuthorYamashita, Katsuya1, AuthorZelenyuk, Alla1, AuthorMoehler, Ottmar1, Author more..
Affiliations:
1external, ou_persistent22              
2Particle Chemistry, Max Planck Institute for Chemistry, Max Planck Society, ou_1826291              

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 Abstract: We present the laboratory results of immersion freezing efficiencies of cellulose particles at supercooled temperature (T) conditions. Three types of chemically homogeneous cellulose samples are used as surrogates that represent supermicron and submicron ice-nucleating plant structural polymers. These samples include microcrystalline cellulose (MCC), fibrous cellulose (FC) and nanocrystalline cellulose (NCC). Our immersion freezing dataset includes data from various ice nucleation measurement techniques available at 17 different institutions, including nine dry dispersion and 11 aqueous suspension techniques. With a total of 20 methods, we performed systematic accuracy and precision analysis of measurements from all 20 measurement techniques by evaluating T-binned (1 ∘C) data over a wide T range (−36 ∘C <T<−4 ∘C). Specifically, we intercompared the geometric surface area-based ice nucleation active surface site (INAS) density data derived from our measurements as a function of T, ns,geo(T). Additionally, we also compared the ns,geo(T) values and the freezing spectral slope parameter (Δlog(ns,geo)/ΔT) from our measurements to previous literature results. Results show all three cellulose materials are reasonably ice active. The freezing efficiencies of NCC samples agree reasonably well, whereas the diversity for the other two samples spans ≈ 10 ∘C. Despite given uncertainties within each instrument technique, the overall trend of the ns,geo(T) spectrum traced by the T-binned average of measurements suggests that predominantly supermicron-sized cellulose particles (MCC and FC) generally act as more efficient ice-nucleating particles (INPs) than NCC with about 1 order of magnitude higher ns,geo(T).

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Language(s): eng - English
 Dates: 2019
 Publication Status: Issued
 Pages: -
 Publishing info: -
 Table of Contents: -
 Rev. Type: -
 Identifiers: ISI: 000464035300002
DOI: 10.5194/acp-19-4823-2019
 Degree: -

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Title: Atmospheric Chemistry and Physics
  Abbreviation : ACP
Source Genre: Journal
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Publ. Info: Göttingen : Copernicus Publications
Pages: - Volume / Issue: 19 (7) Sequence Number: - Start / End Page: 4823 - 4849 Identifier: ISSN: 1680-7316
CoNE: https://pure.mpg.de/cone/journals/resource/111030403014016