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Dive into the research topics where Jonathan M. Horton is active.

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Featured researches published by Jonathan M. Horton.


Langmuir | 2011

Spontaneous phase transfer of thermosensitive hairy particles between water and an ionic liquid.

Jonathan M. Horton; Zhifeng Bai; Xiaoming Jiang; Dejin Li; Timothy P. Lodge; Bin Zhao

This article describes the temperature-induced phase transfer behavior of a series of thermosensitive polymer brush-grafted particles between water and a hydrophobic ionic liquid, 1-ethyl-3-methylimidazolium bis(trifluoromethylsulfonyl)imide ([EMIM][TFSI]). Six samples were made by surface-initiated atom transfer radical polymerization: silica particles grafted with poly(methoxypoly(ethylene glycol) methacrylate) (PPEGMMA) with two different molecular weights, poly(methoxytri(ethylene glycol) methacrylate) (PTEGMMA), poly(methoxydi(ethylene glycol) methacrylate) (PDEGMMA), and two copolymers of PEGMMA and TEGMMA with different compositions (P(PEGMMA-co-TEGMMA)-82 and P(PEGMMA-co-TEGMMA)-74). The cloud points of free PPEGMMA with M(n,SEC) of 23 and 40 kDa, P(PEGMMA-co-TEGMMA)-82, P(PEGMMA-co-TEGMMA)-74, and PTEGMMA in [EMIM][TFSI]-saturated water were 95, 94, 80, 72, and 43 °C, respectively. PDEGMMA was not soluble in the ionic liquid-saturated water. PPEGMMA brush-grafted particles moved spontaneously and completely from water to the [EMIM][TFSI] phase upon heating at 80 °C. When cooled to 22 °C, all particles returned to the water layer. From UV-vis absorbance measurements, the transfer temperature (T(tr)) of PPEGMMA-grafted particles from water to the ionic liquid was 42 °C. Thermodynamic analysis showed that the particle transfer was an entropically driven process. P(PEGMMA-co-TEGMMA)-82, P(PEGMMA-co-TEGMMA)-74, and PTEGMMA brush-grafted particles also underwent reversible and quantitative transfer between the two phases upon heating at 70 °C and cooling at 0 °C; their transfer temperatures from water to [EMIM][TFSI] were 36, 30, and 16 °C, respectively. T(tr) was a linear function of the cloud point of the corresponding free polymer in ionic liquid-saturated water. In contrast, PDEGMMA-grafted particles moved spontaneously to the ionic liquid layer upon heating but did not return to water even after prolonged stirring at 0 °C.


Langmuir | 2015

In Situ Characterization of Binary Mixed Polymer Brush-Grafted Silica Nanoparticles in Aqueous and Organic Solvents by Cryo-Electron Tomography

Tara L. Fox; Saide Tang; Jonathan M. Horton; Heather A. Holdaway; Bin Zhao; Lei Zhu; Phoebe L. Stewart

We present an in situ cryo-electron microscopy (cryoEM) study of mixed poly(acrylic acid) (PAA)/polystyrene (PS) brush-grafted 67 nm silica nanoparticles in organic and aqueous solvents. These organic-inorganic nanoparticles are predicted to be environmentally responsive and adopt distinct brush layer morphologies in different solvent environments. Although the self-assembled morphology of mixed PAA/PS brush-grafted particles has been studied previously in a dried state, no direct visualization of microphase separation was achieved in the solvent environment. CryoEM allows the sample to be imaged in situ, that is, in a frozen solvated state, at the resolution of a transmission electron microscope. Cryo-electron tomograms (cryoET) were generated for mixed PAA/PS brush-grafted nanoparticles in both N,N-dimethylformamide (DMF, a nonselective good solvent) and water (a selective solvent for PAA). Different nanostructures for the mixed brushes were observed in these two solvents. Overall, the brush layer is more compact in water, with a thickness of 18 nm, as compared with an extended layer of 27 nm in DMF. In DMF, mixed PAA/PS brushes are observed to form laterally separated microdomains with a ripple wavelength of 13.8 nm. Because of its lower grafting density than that of PAA, PS domains form more or less cylindrical or truncated cone-shaped domains in the PAA matrix. In water, PAA chains are found to form a more complete shell around the nanoparticle to maximize their interaction with water, whereas PS chains collapse into the core of surface-tethered micelles near the silica core. The cryoET results presented here confirm the predicted environmentally responsive nature of PAA/PS mixed brush-grafted nanoparticles. This experimental approach may be useful for the design of future mixed brush-grafted nanoparticles for nano- and biotechnology applications.


Macromolecules | 2010

Microphase Separation of High Grafting Density Asymmetric Mixed Homopolymer Brushes on Silica Particles

Xiaoming Jiang; Bin Zhao; Ganji Zhong; Naixiong Jin; Jonathan M. Horton; Lei Zhu; Robert S. Hafner; Timothy P. Lodge


Macromolecules | 2010

Evolution of Phase Morphology of Mixed Poly(tert-butyl acrylate)/ Polystyrene Brushes Grafted on Silica Particles with the Change of Chain Length Disparity

Xiaoming Jiang; Ganji Zhong; Jonathan M. Horton; Naixiong Jin; Lei Zhu; Bin Zhao


Langmuir | 2011

Temperature- and pH-Triggered Reversible Transfer of Doubly Responsive Hairy Particles between Water and a Hydrophobic Ionic Liquid

Jonathan M. Horton; Chunhui Bao; Zhifeng Bai; Timothy P. Lodge; Bin Zhao


Macromolecules | 2012

Effect of Overall Grafting Density on Microphase Separation of Mixed Homopolymer Brushes Synthesized from Y-Initiator-Functionalized Silica Particles

Chunhui Bao; Saide Tang; Jonathan M. Horton; Xiaoming Jiang; Ping Tang; Feng Qiu; Lei Zhu; Bin Zhao


ACS Macro Letters | 2012

Truncated Wedge-Shaped Nanostructures Formed from Lateral Microphase Separation of Mixed Homopolymer Brushes Grafted on 67 nm Silica Nanoparticles: Evidence of the Effect of Substrate Curvature

Jonathan M. Horton; Saide Tang; Chunhui Bao; Ping Tang; Feng Qiu; Lei Zhu; Bin Zhao


Macromolecules | 2013

Direct Visualization of Three-Dimensional Morphology in Hierarchically Self-Assembled Mixed Poly(tert-butyl acrylate)/Polystyrene Brush-Grafted Silica Nanoparticles

Saide Tang; Ting-Ya Lo; Jonathan M. Horton; Chunhui Bao; Ping Tang; Feng Qiu; Rong-Ming Ho; Bin Zhao; Lei Zhu


Soft Matter | 2015

Environmentally responsive self-assembly of mixed poly(tert-butyl acrylate)–polystyrene brush-grafted silica nanoparticles in selective polymer matrices

Saide Tang; Tara L. Fox; Ting Ya Lo; Jonathan M. Horton; Rong-Ming Ho; Bin Zhao; Phoebe L. Stewart; Lei Zhu


Journal of Polymer Science Part B | 2014

Stimuli-triggered phase transfer of polymer-inorganic hybrid hairy particles between two immiscible liquid phases

Chunhui Bao; Jonathan M. Horton; Zhifeng Bai; Dejin Li; Timothy P. Lodge; Bin Zhao

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Bin Zhao

University of Tennessee

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Lei Zhu

Case Western Reserve University

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Saide Tang

Case Western Reserve University

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Chunhui Bao

University of Tennessee

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Phoebe L. Stewart

Case Western Reserve University

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Tara L. Fox

Case Western Reserve University

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Zhifeng Bai

University of Minnesota

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