<?xml version="1.0" encoding="UTF-8"?><?xml-stylesheet type="text/xsl" href="static/style.xsl"?><OAI-PMH xmlns="http://www.openarchives.org/OAI/2.0/" xmlns:xsi="http://www.w3.org/2001/XMLSchema-instance" xsi:schemaLocation="http://www.openarchives.org/OAI/2.0/ http://www.openarchives.org/OAI/2.0/OAI-PMH.xsd"><responseDate>2026-09-20T04:37:29Z</responseDate><request verb="GetRecord" identifier="oai:www.repository.cam.ac.uk:1810/388708" metadataPrefix="uketd_dc">https://api.repository.cam.ac.uk/server/oai/request</request><GetRecord><record><header><identifier>oai:www.repository.cam.ac.uk:1810/388708</identifier><datestamp>2025-08-29T01:45:53Z</datestamp><setSpec>com_1810_213729</setSpec><setSpec>com_1810_256065</setSpec><setSpec>col_1810_219485</setSpec></header><metadata><uketd_dc:uketddc xmlns:uketd_dc="http://naca.central.cranfield.ac.uk/ethos-oai/2.0/" xmlns:dc="http://purl.org/dc/elements/1.1/" xmlns:dcterms="http://purl.org/dc/terms/" xmlns:uketdterms="http://naca.central.cranfield.ac.uk/ethos-oai/terms/" xmlns:xsi="http://www.w3.org/2001/XMLSchema-instance" xmlns:doc="http://www.lyncode.com/xoai" xsi:schemaLocation="http://naca.central.cranfield.ac.uk/ethos-oai/2.0/ http://naca.central.cranfield.ac.uk/ethos-oai/2.0/uketd_dc.xsd">
   <dc:title>Physical and radiative properties of coated nanoparticle aggregates</dc:title>
   <dc:identifier xsi:type="dcterms:DOI">https://doi.org/10.17863/CAM.120933</dc:identifier>
   <dc:creator>Jourdain, Cyprien</dc:creator>
   <uketdterms:advisor>Dedoussi, Irene</uketdterms:advisor>
   <dcterms:abstract>Coated aggregate nanoparticles are ubiquitous in nature and present a transformative opportunity for nanotechnology. Their unique coatings influence various fields, including climate
change, energy, and medicine. However, the impact of coated nanoparticles on climate
remains poorly quantified, highlighting the need for a more comprehensive characterisation
of the bare nanoparticles and liquid phase.
This dissertation introduces a microphysics model (CA2M-OpenCOAT) for generating,
visualising, and quantifying realistic coated nanoaggregates. The model adjusts particle
size, fractality, polydispersity, and overlap for black carbon (BC) aggregates, aligning
them with actual combustion emissions. Artificial liquid-phase growth is incorporated
as a proxy for condensational processes. Three growth pathways are explored: capillary
condensation in low-saturation environments and extended uniform and non-uniform coatings
at higher saturations. Capillary condensation leads to aggregate pore filling via pendular
rings, modelled with an ensemble of minimal surfaces, while non-uniform coatings require
advanced interface-capturing methods. These growth processes induce significant changes
in particle properties, including mass, electrical mobility, surface area, and optical cross-sections.
When applied to atmospheric BC aging, the model provides new insights into the climate
impact of these short-lived climate forcers. The absorption enhancement of non-uniformly
lightly-coated BC is less pronounced than that of laboratory-generated particles and core-shell models, aligning more closely with field measurements. This highlights the influence
of BC core and coating morphologies on absorption efficiency and proposes a resolution to
discrepancies between laboratory and field data. A mass absorption cross-section parametrisation is developed to emphasise the effects of non-uniform coatings at low coating fractions,
extending to cases where BC is fully encapsulated in droplets. The resulting direct radiative
forcing is computed in a global model, yielding an average value of 0.18 W/m2
, lower
than scenarios with uniformly coated BC aggregates or coated spheres. Additionally, the
morphology of coated BC affects its atmospheric removal, with dry deposition simulations
showing a significantly extended lifetime compared to spherical models, adversely altering
air quality and atmospheric burden.
This dissertation also proposes a novel online technique for directly measuring nanoparti cle volume and density. A dedicated growth apparatus is developed to coat particles with an
oily liquid and form spherical droplets of controlled size. This allows for precise tracking of
changes in mass and mobility, enabling the recovery of volume, porosity, and skeletal density
without prior knowledge of material density. Successful recovery is demonstrated for various
sample morphologies and compositions, including polymer spheres, powders, and silver and
BC aggregates. The unique growth dynamics are identified for each sample, revealing key
findings on cluster formation, pore filling, and aggregate restructuring.
Coating mechanisms for BC remain poorly understood, yet they are commonly assumed
in global models and experimental data inversion. This dissertation proposes a novel experimental strategy to unravel the contributions of condensation and coagulation of BC with
a secondary organics surrogate. Both the radiative and transport properties are affected by
these mechanisms. Absorption enhancement is minor for coagulated BC, as light interaction
between the attached droplet and BC core is limited. In contrast, a lensing effect dominates
for condensed BC and a high enhancement plateau is reached after a critical coating fraction.
The dynamic shape factor, critical for particle transport, is also investigated. For coagulated
BC, its non-monotonic evolution is driven by the attached structure morphology, while for
condensed BC the shape factor decreases to one at spherical encapsulation. Finally, new
empirical parametrisations of the mass-absorption cross-section for both mechanisms are
proposed for aerosol modelling applications.
In conclusion, this dissertation advances the understanding of coated nanoparticles,
focusing on the detrimental effects of atmospheric coated BC particles and leveraging
nanoparticle-coating interactions for advanced aerosol metrology.</dcterms:abstract>
   <uketdterms:institution>University of Cambridge</uketdterms:institution>
   <dcterms:issued>2025-01-31</dcterms:issued>
   <dc:type>Thesis</dc:type>
   <uketdterms:qualificationlevel>Doctoral</uketdterms:qualificationlevel>
   <uketdterms:qualificationname>Doctor of Philosophy (PhD)</uketdterms:qualificationname>
   <dc:language>eng</dc:language>
   <dcterms:isReferencedBy xsi:type="dcterms:URI">https://www.repository.cam.ac.uk/handle/1810/388708</dcterms:isReferencedBy>
   <uketdterms:embargotype>embargo</uketdterms:embargotype>
   <uketdterms:embargodate>2026-08-28</uketdterms:embargodate>
   <dc:identifier xsi:type="dcterms:URI">https://www.repository.cam.ac.uk/bitstreams/e07a1510-9618-4af5-a0bf-da9d73e6b8cc/download</dc:identifier>
   <uketdterms:checksum xsi:type="uketdterms:MD5">41599474810849617979837200ac1a8b</uketdterms:checksum>
   <dcterms:license>https://www.repository.cam.ac.uk/bitstreams/ba436aee-185f-4dee-961b-75f5a059dbdd/download</dcterms:license>
   <uketdterms:checksum xsi:type="uketdterms:MD5">87eda9de84448d1f82354d60eee3eb5f</uketdterms:checksum>
   <dc:rights>http://purl.org/NET/rdflicense/allrightsreserved</dc:rights>
   <dc:subject>aerosol</dc:subject>
   <dc:subject>climate</dc:subject>
   <dc:subject>energy</dc:subject>
   <dc:subject>experiments</dc:subject>
   <dc:subject>nanoparticles</dc:subject>
   <dc:subject>optics</dc:subject>
   <dc:subject>simulation</dc:subject>
</uketd_dc:uketddc>
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