Polymer-Grafted Nanoparticles with Variable Grafting Densities for High Energy Density Polymeric Nanocomposite Dielectric Capacitors
暂无分享,去创建一个
J. Douglas | N. Pradhan | Bhausaheb V. Tawade | D. Raghavan | Asad Karim | Maninderjeet Singh | Ikeoluwa E. Apata | Jagadesh Veerasamy
[1] J. Douglas,et al. Enhanced Dielectric Strength and Capacitive Energy Density of Cyclic Polystyrene Films , 2022, ACS polymers Au.
[2] P. Nealey,et al. Effect of Graft Molecular Weight and Density on the Mechanical Properties of Polystyrene-Grafted Cellulose Nanocrystal Films , 2021, Macromolecules.
[3] P. Nealey,et al. Enhanced Ion Conductivity through Hydrated, Polyelectrolyte-Grafted Cellulose Nanocrystal Films , 2021, Macromolecules.
[4] S. Satija,et al. Control of Phase Morphology of Binary Polymer Grafted Nanoparticle Blend Films via Direct Immersion Annealing. , 2021, ACS nano.
[5] Wenjie Wu,et al. Nanoscale Strategies to Enhance the Energy Storage Capacity of Polymeric Dielectric Capacitors: Review of Recent Advances , 2021, Polymer Reviews.
[6] A. Karim,et al. Recent Advances in the Synthesis of Polymer-Grafted Low-K and High-K Nanoparticles for Dielectric and Electronic Applications , 2021, Molecules.
[7] R. Macfarlane,et al. Macroscopic materials assembled from nanoparticle superlattices , 2021, Nature.
[8] C. Stafford,et al. Observation of General Entropy-Enthalpy Compensation Effect in the Relaxation of Wrinkled Polymer Nanocomposite Films. , 2021, Nano letters.
[9] A. Karim,et al. Recent developments in the synthesis of chemically modified nanomaterials for use in dielectric and electronics applications , 2020, Nanotechnology.
[10] D. Vlassopoulos,et al. Tuning Selectivities in Gas Separation Membranes Based on Polymer-Grafted Nanoparticles. , 2020, ACS nano.
[11] Alexandros Chremos. Design of nearly perfect hyperuniform polymeric materials. , 2020, The Journal of chemical physics.
[12] S. Satija,et al. Effect of Molecular Weight and Layer Thickness on the Dielectric Breakdown Strength of Neat and Homopolymer Swollen Lamellar Block Copolymer Films , 2020 .
[13] K. Matyjaszewski,et al. Control of Dispersity and Grafting Density of Particle Brushes by Variation of ATRP Catalyst Concentration. , 2019, ACS macro letters.
[14] J. Douglas,et al. Influence of Branching on the Configurational and Dynamical Properties of Entangled Polymer Melts , 2019, Polymers.
[15] Sanat K. Kumar,et al. High-Frequency Mechanical Behavior of Pure Polymer-Grafted Nanoparticle Constructs. , 2019, ACS macro letters.
[16] Yabin Zhang,et al. Core-shell structured PVDF@BT nanoparticles for dielectric materials: A novel composite to prove the dependence of dielectric properties on ferroelectric shell , 2019, Materials & Design.
[17] P. Fu,et al. Facile Fabrication of Size-Tunable Core/Shell Ferroelectric/Polymeric Nanoparticles with Tailorable Dielectric Properties via Organocatalyzed Atom Transfer Radical Polymerization Driven by Visible Light , 2019, Scientific Reports.
[18] C. Stafford,et al. Tuning the Relaxation of Nanopatterned Polymer Films with Polymer-Grafted Nanoparticles: Observation of Entropy-Enthalpy Compensation. , 2018, Nano letters.
[19] J. Douglas,et al. A comparative study of thermodynamic, conformational, and structural properties of bottlebrush with star and ring polymer melts. , 2018, The Journal of chemical physics.
[20] S. Torquato. Hyperuniform states of matter , 2018, Physics Reports.
[21] K. Zhou,et al. High Performance Capacitors Using BaTiO3 Nanowires Engineered by Rigid Liquid-crystalline Polymers , 2017 .
[22] Jack F Douglas,et al. Particle localization and hyperuniformity of polymer‐grafted nanoparticle materials , 2017, Annalen der Physik.
[23] Wantai Yang,et al. Improving dielectric properties of BaTiO3/poly(vinylidene fluoride) composites by employing core-shell structured BaTiO3@Poly(methylmethacrylate) and BaTiO3@Poly(trifluoroethyl methacrylate) nanoparticles , 2017 .
[24] E. Baer,et al. 50th Anniversary Perspective: Dielectric Phenomena in Polymers and Multilayered Dielectric Films , 2017 .
[25] S. Boggs,et al. Advanced polymeric dielectrics for high energy density applications , 2016 .
[26] K. Yager,et al. Directed Self-Assembly of Block Copolymers for High Breakdown Strength Polymer Film Capacitors. , 2016, ACS applied materials & interfaces.
[27] H. Ploehn,et al. Bimodal Polymer Brush Core-Shell Barium Titanate Nanoparticles: A Strategy for High-Permittivity Polymer Nanocomposites , 2015 .
[28] Won‐Ki Lee,et al. Luminescence of Terbium (III) Complexes Incorporated in Carboxylic Acid Functionalized Polystyrene/BaTiO3 Nanocomposites , 2015 .
[29] L. Archer,et al. Hyperdiffusive Dynamics in Newtonian Nanoparticle Fluids. , 2015, ACS macro letters.
[30] J. Douglas,et al. Communication: When does a branched polymer become a particle? , 2015, The Journal of chemical physics.
[31] Zhiqun Lin,et al. Organic-Inorganic Nanocomposites via Placing Monodisperse Ferroelectric Nanocrystals in Direct and Permanent Contact with Ferroelectric Polymers. , 2015, Journal of the American Chemical Society.
[32] A. Karim,et al. Orientation control in nanoparticle filled block copolymer cold zone annealed films , 2015 .
[33] A. Karim,et al. Synthesis of highly dispersed, block copolymer‐grafted TiO2 nanoparticles within neat block copolymer films , 2015 .
[34] Lei Zhu,et al. Achieving high electric energy storage in a polymer nanocomposite at low filling ratios using a highly polarizable phthalocyanine interphase , 2014 .
[35] R. Vaia,et al. Performance of dielectric nanocomposites: matrix-free, hairy nanoparticle assemblies and amorphous polymer-nanoparticle blends. , 2014, ACS applied materials & interfaces.
[36] Xingyi Huang,et al. Energy storage in ferroelectric polymer nanocomposites filled with core-shell structured polymer@BaTiO3 nanoparticles: understanding the role of polymer shells in the interfacial regions. , 2014, ACS applied materials & interfaces.
[37] H. Ploehn,et al. Thiophene Polymer-Grafted Barium Titanate Nanoparticles toward Nanodielectric Composites , 2014 .
[38] Xingyi Huang,et al. “Grafting to” route to PVDF-HFP-GMA/BaTiO3 nanocomposites with high dielectric constant and high thermal conductivity for energy storage and thermal management applications , 2014 .
[39] J. Perry,et al. Surface-initiated polymerization from barium titanate nanoparticles for hybrid dielectric capacitors. , 2014, ACS applied materials & interfaces.
[40] K. Matyjaszewski,et al. Surface-Initiated Polymerization as an Enabling Tool for Multifunctional (Nano-)Engineered Hybrid Materials , 2014 .
[41] Xingyi Huang,et al. Combining RAFT polymerization and thiol-ene click reaction for core-shell structured polymer@BaTiO3 nanodielectrics with high dielectric constant, low dielectric loss, and high energy storage capability. , 2014, ACS applied materials & interfaces.
[42] H. Ploehn,et al. Polymers Containing Highly Polarizable Conjugated Side Chains as High‐Performance All‐Organic Nanodielectric Materials , 2013 .
[43] Xingyi Huang,et al. Core@Double-Shell Structured BaTiO3–Polymer Nanocomposites with High Dielectric Constant and Low Dielectric Loss for Energy Storage Application , 2013 .
[44] Zhiqun Lin,et al. Block copolymer/ferroelectric nanoparticle nanocomposites. , 2013, Nanoscale.
[45] Wantai Yang,et al. Preparation and dielectric properties of core–shell structural composites of poly(1H,1H,2H,2H-perfluorooctyl methacrylate)@BaTiO3 nanoparticles , 2013 .
[46] Xingyi Huang,et al. Fluoro-Polymer@BaTiO3 Hybrid Nanoparticles Prepared via RAFT Polymerization: Toward Ferroelectric Polymer Nanocomposites with High Dielectric Constant and Low Dielectric Loss for Energy Storage Application , 2013 .
[47] Xingyi Huang,et al. Core-shell structured polystyrene/BaTiO3 hybrid nanodielectrics prepared by in situ RAFT polymerization: a route to high dielectric constant and low loss materials with weak frequency dependence. , 2012, Macromolecular rapid communications.
[48] Zhiqun Lin,et al. Structure evolution and dielectric behavior of polystyrene-capped barium titanate nanoparticles , 2012 .
[49] V. Colvin,et al. Measuring the grafting density of nanoparticles in solution by analytical ultracentrifugation and total organic carbon analysis. , 2012, Analytical chemistry.
[50] K. Matyjaszewski,et al. Toughening fragile matter: mechanical properties of particle solids assembled from polymer-grafted hybrid particles synthesized by ATRP , 2012 .
[51] Zhiqun Lin,et al. Novel Amphiphilic Multi-Arm, Star-Like Block Copolymers as Unimolecular Micelles , 2011 .
[52] Xingyi Huang,et al. Core-shell structured poly(methyl methacrylate)/BaTiO3 nanocomposites prepared by in situ atom transfer radical polymerization: a route to high dielectric constant materials with the inherent low loss of the base polymer , 2011 .
[53] Chia‐Chen Li,et al. An efficient approach to derive hydroxyl groups on the surface of barium titanate nanoparticles to improve its chemical modification ability. , 2009, Journal of colloid and interface science.
[54] Krzysztof Matyjaszewski,et al. Controlled/"living" radical polymerization. atom transfer radical polymerization in the presence of transition-metal complexes , 1995 .
[55] K. Matyjaszewski,et al. Brush-modified materials: Control of molecular architecture, assembly behavior, properties and applications , 2020 .
[56] J. K. Nelson,et al. Dielectric Polymer Nanocomposites , 2010 .
[57] H. Nalwa,et al. Dielectric properties of copper-phthalocyanine polymer , 1985 .