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Motezakker, Ahmad RezaORCID iD iconorcid.org/0000-0002-6302-0004
Publikationer (9 of 9) Visa alla publikationer
Tian, J., Motezakker, A. R., Wang, R., Bae, A. J., Fluerasu, A., Zhu, H., . . . Rosén, T. (2025). Probing the Self-Assembly dynamics of cellulose nanocrystals by X-ray photon correlation spectroscopy. Journal of Colloid and Interface Science, 683, 1077-1086
Öppna denna publikation i ny flik eller fönster >>Probing the Self-Assembly dynamics of cellulose nanocrystals by X-ray photon correlation spectroscopy
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2025 (Engelska)Ingår i: Journal of Colloid and Interface Science, ISSN 0021-9797, E-ISSN 1095-7103, Vol. 683, s. 1077-1086Artikel i tidskrift (Refereegranskat) Published
Abstract [en]

Hypothesis: Charge-stabilized colloidal cellulose nanocrystals (CNCs) can self-assemble into higher-ordered chiral nematic structures by varying the volume fraction. The assembly process exhibits distinct dynamics during the isotropic to liquid crystal phase transition, which can be elucidated using X-ray photon correlation spectroscopy (XPCS). Experiments: Anionic CNCs were dispersed in propylene glycol (PG) and water spanning a range of volume fractions, encompassing several phase transitions. Coupled with traditional characterization techniques, XPCS was conducted to monitor the dynamic evolution of the different phases. Additionally, simulated XPCS results were obtained using colloidal rods and compared with the experimental data, offering additional insights into the dynamic behavior of the system. Findings: The results indicate that the particle dynamics of CNCs undergo a stepped decay in three stages during the self-assembly process in PG, coinciding with the observed phases. The phase transitions are associated with a total drop of Brownian diffusion rates by four orders of magnitude, a decrease of more than a thousand times slower than expected in an ideal system of repulsive Brownian rods. Given the similarity in the phase behaviors in CNCs dispersed in PG and in water, we hypothesize that these dynamic behaviors can be extrapolated to other polar solvent environments. Importantly, these findings represent the direct measurement of CNC dynamics using XPCS, underscoring the feasibility of directly assessing the dynamic behavior of other rod-like colloidal suspensions.

Ort, förlag, år, upplaga, sidor
Elsevier BV, 2025
Nyckelord
Cellulose Nanocrystals, Dynamics, Phase Transition, Self-Assembly, X-ray Photon Correlation Spectroscopy
Nationell ämneskategori
Fysikalisk kemi
Identifikatorer
urn:nbn:se:kth:diva-358398 (URN)10.1016/j.jcis.2024.12.234 (DOI)001407819800001 ()39778489 (PubMedID)2-s2.0-85214316988 (Scopus ID)
Anmärkning

QC 20250212

Tillgänglig från: 2025-01-15 Skapad: 2025-01-15 Senast uppdaterad: 2025-02-12Bibliografiskt granskad
Motezakker, A. R. (2024). Dynamics and interactions in entangled nanofibre dispersions. (Doctoral dissertation). Stockholm: KTH Royal Institute of Technology
Öppna denna publikation i ny flik eller fönster >>Dynamics and interactions in entangled nanofibre dispersions
2024 (Engelska)Doktorsavhandling, sammanläggning (Övrigt vetenskapligt)
Abstract [en]

Biopolymers and their networks are fundamental to numerous biological and synthetic systems, with applications ranging from extracellular matrices in biological tissues to engineered nanostructured materials like cellulose-based nanocomposites. Understanding the dynamics of biopolymers in these networks is crucial due to their potential in material science and biotechnology, such as in developing sustainable materials and enhancing drug delivery mechanisms. The intricate network structures, from fibrous matrices in natural systems to designed frameworks in advanced materials, play a pivotal role in determining the mechanical and transport properties of the overall system.

This thesis delves into the dynamics of biopolymers, focusing specifically on the diffusion processes within such networks. The complexity of biopolymer behavior in networked environments involves multiple factors including polymer stiffness, network structure, and the interaction between biopolymer components. The diffusion of biopolymer fibres themselves, as well as nanoparticles within these networks, is explored through detailed coarse-grained molecular dynamics simulations. These simulations aim to model the nuanced interaction dynamics that influence diffusion, providing insights into how these factors affect biopolymer networks' rheological properties and functional capabilities.

This work contributes to the broader understanding of how biopolymers behave in complex environments by investigating the fundamental mechanisms of diffusion in biopolymer networks. It addresses the need for a deeper exploration of biopolymer dynamics to inform the design and synthesis of new biomaterials and bio-based materials. The findings from this thesis are expected to offer implications for enhancing the functionality of biopolymer-based systems in various applications, from improving the efficiency of biomaterials used in medical applications to optimizing the performance of bio-based composites in industrial applications. 

Ort, förlag, år, upplaga, sidor
Stockholm: KTH Royal Institute of Technology, 2024
Serie
TRITA-SCI-FOU ; 2024:25
Nationell ämneskategori
Den kondenserade materiens fysik
Forskningsämne
Teknisk mekanik
Identifikatorer
urn:nbn:se:kth:diva-346647 (URN)978-91-8040-936-0 (ISBN)
Disputation
2024-06-13, D1, Lindstedtsvägen 9, Stockholm, 10:00 (Engelska)
Opponent
Handledare
Anmärkning

QC240527

Tillgänglig från: 2024-05-27 Skapad: 2024-05-21 Senast uppdaterad: 2025-06-13Bibliografiskt granskad
Motezakker, A. R., Greca, L. G., Boschi, E., Siqueira, G., Lundell, F., Rosén, T., . . . Söderberg, D. (2024). Stick, Slide, or Bounce: Charge Density Controls Nanoparticle Diffusion. ACS Nano, 18(42), 28636-28648
Öppna denna publikation i ny flik eller fönster >>Stick, Slide, or Bounce: Charge Density Controls Nanoparticle Diffusion
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2024 (Engelska)Ingår i: ACS Nano, ISSN 1936-0851, E-ISSN 1936-086X, Vol. 18, nr 42, s. 28636-28648Artikel i tidskrift (Refereegranskat) Published
Abstract [en]

The diffusion and interaction dynamics of charged nanoparticles (NPs) within charged polymer networks are crucial for understanding various biological and biomedical applications. Using a combination of coarse-grained molecular dynamics simulations and experimental diffusion studies, we investigate the effects of the NP size, relative surface charge density (ζ), and concentration on the NP permeation length and time. We propose a scaling law for the relative diffusion of NPs with respect to concentration and ζ, highlighting how these factors influence the NP movement within the network. The analyses reveal that concentration and ζ significantly affect NP permeation length and time, with ζ being critical, as critical as concentration. This finding is corroborated by controlled release experiments. Further, we categorize NP dynamics into sticking, sliding, and bouncing regimes, demonstrating how variations in ζ, concentration, and NP size control these behaviors. Through normalized attachment time (NAT) analyses, we elucidate the roles of electrostatic interactions, steric hindrance, and hydrodynamic forces in governing NP dynamics. These insights provide guidance for optimizing NP design in targeted drug delivery and advanced material applications, enhancing our understanding of NP behavior in complex environments.

Ort, förlag, år, upplaga, sidor
American Chemical Society (ACS), 2024
Nyckelord
controlled release, drug delivery, electrostatic interactions, molecular dynamics simulations, nanoparticle diffusion, polymer networks, surface charge effects
Nationell ämneskategori
Pappers-, massa- och fiberteknik
Identifikatorer
urn:nbn:se:kth:diva-366361 (URN)10.1021/acsnano.4c05077 (DOI)001331391300001 ()39378149 (PubMedID)2-s2.0-85205981755 (Scopus ID)
Anmärkning

QC 20250707

Tillgänglig från: 2025-07-07 Skapad: 2025-07-07 Senast uppdaterad: 2025-07-07Bibliografiskt granskad
Motezakker, A. R., Córdoba, A., Rosén, T., Lundell, F. & Söderberg, D. (2023). Effect of Stiffness on the Dynamics of Entangled Nanofiber Networks at Low Concentrations. Macromolecules, 56(23), 9595-9603
Öppna denna publikation i ny flik eller fönster >>Effect of Stiffness on the Dynamics of Entangled Nanofiber Networks at Low Concentrations
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2023 (Engelska)Ingår i: Macromolecules, ISSN 0024-9297, E-ISSN 1520-5835, Vol. 56, nr 23, s. 9595-9603Artikel i tidskrift, Editorial material (Refereegranskat) Published
Abstract [en]

Biopolymer network dynamics play a significant role in both biological and materials science. This study focuses on the dynamics of cellulose nanofibers as a model system given their relevance to biology and nanotechnology applications. Using large-scale coarse-grained simulations with a lattice Boltzmann fluid coupling, we investigated the reptation behavior of individual nanofibers within entangled networks. Our analysis yields essential insights, proposing a scaling law for rotational diffusion, quantifying effective tube diameter, and revealing release mechanisms during reptation, spanning from rigid to semiflexible nanofibers. Additionally, we examine the onset of entanglement in relation to the nanofiber flexibility within the network. Microrheology analysis is conducted to assess macroscopic viscoelastic behavior. Importantly, our results align closely with previous experiments, validating the proposed scaling laws, effective tube diameters, and onset of entanglement. The findings provide an improved fundamental understanding of biopolymer network dynamics and guide the design of processes for advanced biobased materials. 

Ort, förlag, år, upplaga, sidor
American Chemical Society (ACS), 2023
Nationell ämneskategori
Biofysik Bioinformatik (beräkningsbiologi)
Identifikatorer
urn:nbn:se:kth:diva-343525 (URN)10.1021/acs.macromol.3c01526 (DOI)001141570800001 ()2-s2.0-85178555657 (Scopus ID)
Forskningsfinansiär
Vetenskapsrådet, 2018-06469Knut och Alice Wallenbergs Stiftelse
Anmärkning

QC 20240216

Tillgänglig från: 2024-02-15 Skapad: 2024-02-15 Senast uppdaterad: 2025-02-20Bibliografiskt granskad
Rosén, T., He, H., Wang, R., Gordeyeva, K., Motezakker, A. R., Fluerasu, A., . . . Hsiao, B. S. (2023). Exploring nanofibrous networks with x-ray photon correlation spectroscopy through a digital twin. Physical review. E, 108(1), Article ID 014607.
Öppna denna publikation i ny flik eller fönster >>Exploring nanofibrous networks with x-ray photon correlation spectroscopy through a digital twin
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2023 (Engelska)Ingår i: Physical review. E, ISSN 2470-0045, E-ISSN 2470-0053, Vol. 108, nr 1, artikel-id 014607Artikel i tidskrift (Refereegranskat) Published
Abstract [en]

We demonstrate a framework of interpreting data from x-ray photon correlation spectroscopy experiments with the aid of numerical simulations to describe nanoscale dynamics in soft matter. This is exemplified with the transport of passive tracer gold nanoparticles in networks of charge-stabilized cellulose nanofibers. The main structure of dynamic modes in reciprocal space could be replicated with a simulated system of confined Brownian motion, a digital twin, allowing for a direct measurement of important effective material properties describing the local environment of the tracers. 

Nyckelord
Cellulose nanofibers, Gold nanoparticle, Gold Nanoparticles, In networks, Main structure, Nano scale, Nano-fibrous, Passive tracers, Soft matter, X-ray photon correlation spectroscopy
Nationell ämneskategori
Den kondenserade materiens fysik
Identifikatorer
urn:nbn:se:kth:diva-335240 (URN)10.1103/physreve.108.014607 (DOI)001055203100002 ()37583188 (PubMedID)2-s2.0-85166735615 (Scopus ID)
Anmärkning

QC 20230904

Tillgänglig från: 2023-09-04 Skapad: 2023-09-04 Senast uppdaterad: 2024-05-31Bibliografiskt granskad
Ghorbani, M., Deprem, G., Ozdemir, E., Motezakker, A. R., Villanueva, L. G. & Kosar, A. (2019). On ``Cavitation on Chip'' in Microfluidic Devices With Surface and Sidewall Roughness Elements. Journal of microelectromechanical systems, 28(5), 890-899
Öppna denna publikation i ny flik eller fönster >>On ``Cavitation on Chip'' in Microfluidic Devices With Surface and Sidewall Roughness Elements
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2019 (Engelska)Ingår i: Journal of microelectromechanical systems, ISSN 1057-7157, E-ISSN 1941-0158, Vol. 28, nr 5, s. 890-899Artikel i tidskrift (Refereegranskat) Published
Abstract [en]

In this paper, cavitating flows are characterized in 29 microfluidic devices in order to achieve a comprehensive perspective regarding flow patterns in microscale, which is crucial in the applications, such as energy harvesting and biomedical treatment. While the assessment of size effects is vital for the design and development of microfluidic devices involving phase change, surface/sidewall roughness and pressure pulses as a result of nanomechanical oscillations increase the performance with respect to cavitation by providing more cavitation bubbles. A typical device generates cavitating flows under different conditions (from inception to choked flow). In this device, a restrictive element and a big channel downstream of the restrictive element--where the cavitation is formed and developed--are included. The cavitating flows are obtained inside 24 sidewall roughened and 5 surface roughened/plain microfluidic devices at different pressure drops. The length and height of the sidewall roughness elements are varied to achieve the most optimum performance in terms of cavitation generation. Moreover, different surface roughened and plain devices are considered to provide a comprehensive overview of cavitation generation in microscale. The results show that sidewall roughness elements have a remarkable effect on the cavitation inception and flow patterns. [2019-0025] IEEE

Ort, förlag, år, upplaga, sidor
Institute of Electrical and Electronics Engineers Inc., 2019
Nyckelord
Cavitation, fully developed twin cavities., inception, microfluidic device, roughness, Energy harvesting, Flow patterns, Fluidic devices, Microfluidics, Surface roughness, Biomedical treatment, Cavitation inception, Design and Development, Different pressures, fully developed twin cavities, Micro-fluidic devices, Nanomechanical oscillations
Nationell ämneskategori
Annan elektroteknik och elektronik
Identifikatorer
urn:nbn:se:kth:diva-263269 (URN)10.1109/JMEMS.2019.2925541 (DOI)000489837100019 ()2-s2.0-85069910140 (Scopus ID)
Anmärkning

QC 20191105

Tillgänglig från: 2019-11-05 Skapad: 2019-11-05 Senast uppdaterad: 2024-05-20Bibliografiskt granskad
Motezakker, A. R., Cordoba, A., Kummer, N., Lundell, F., Rosén, T., Nyström, G. & Söderberg, D.Coarse-grained modeling of oppositely charged polyelectrolytes: cellulose nanocrystals and amyloid system.
Öppna denna publikation i ny flik eller fönster >>Coarse-grained modeling of oppositely charged polyelectrolytes: cellulose nanocrystals and amyloid system
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(Engelska)Manuskript (preprint) (Övrigt vetenskapligt)
Nationell ämneskategori
Kemi
Identifikatorer
urn:nbn:se:kth:diva-346646 (URN)
Anmärkning

QC 20240522

Tillgänglig från: 2024-05-21 Skapad: 2024-05-21 Senast uppdaterad: 2024-05-31Bibliografiskt granskad
Tian, J., Motezakker, A. R., Wang, R., Bae, A., Fluerasu, A., Hsiao, B. S. & Rosén, T.Probing the self-assembly dynamics of cellulose nanocrystals by x-ray photon correlation spectroscopy.
Öppna denna publikation i ny flik eller fönster >>Probing the self-assembly dynamics of cellulose nanocrystals by x-ray photon correlation spectroscopy
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(Engelska)Manuskript (preprint) (Övrigt vetenskapligt)
Nationell ämneskategori
Fysikalisk kemi
Identifikatorer
urn:nbn:se:kth:diva-346644 (URN)
Anmärkning

QC 20240521

Tillgänglig från: 2024-05-21 Skapad: 2024-05-21 Senast uppdaterad: 2024-05-31Bibliografiskt granskad
Motezakker, A. R., Greca, L. G., Boschi, E., siqueira, G., Lundell, F., Rosén, T., . . . Söderberg, D.Stick, Slide, or bounce: charge density controls nanoparticle diffusion.
Öppna denna publikation i ny flik eller fönster >>Stick, Slide, or bounce: charge density controls nanoparticle diffusion
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(Engelska)Manuskript (preprint) (Övrigt vetenskapligt)
Nationell ämneskategori
Den kondenserade materiens fysik
Identifikatorer
urn:nbn:se:kth:diva-346645 (URN)
Anmärkning

QC 20240522

Tillgänglig från: 2024-05-21 Skapad: 2024-05-21 Senast uppdaterad: 2024-05-31Bibliografiskt granskad
Organisationer
Identifikatorer
ORCID-id: ORCID iD iconorcid.org/0000-0002-6302-0004

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