Unprecedented Mechanical Properties in Linear UHMWPE Using a Heterogeneous Catalytic System
暂无分享,去创建一个
[1] M. A. Shcherbina,et al. Immobilized on MgCl2 bis(phenoxy-imine) complexes of Ti and Zr as catalysts for preparing UHMWPE and ethylene/higher α-olefin copolymers , 2021, Polymer Bulletin.
[2] P. Dorovatovskii,et al. Novel titanium(IV) diolate complexes with additional O‐donor as precatalyst for the synthesis of ultrahigh molecular weight polyethylene with reduced entanglement density: Influence of polymerization conditions and its implications on mechanical properties , 2021 .
[3] S. Rastogi,et al. Structural modification of phenoxyimine titanium complexes and activation studies with alkylaluminum compounds , 2020, ChemCatChem.
[4] Yu Cao,et al. Reduced Entanglement Density of Ultrahigh-Molecular-Weight Polyethylene Favored by the Isolated Immobilization on the MgCl2 (110) Plane , 2020 .
[5] P. Dorovatovskii,et al. Novel alkoxo-titanium(IV) complexes with fluorinated 2-hydroxymethylphenol derivatives as catalysts for the formation of ultra-high molecular weight polyethylene nascent reactor powders , 2019 .
[6] G. G. Nikiforova,et al. Binuclear and Hexanuclear Ti(IV) Complexes Supported by [OOOO]4–-type Ligand for Preparing Disentangled UHMWPE , 2018, Chinese Journal of Polymer Science.
[7] P. Dorovatovskii,et al. Novel titanium (IV) complexes with 1,2-diolate ligands: Synthesis, structure and catalytic activities in ultra-high molecular weight polyethylene production , 2018, Journal of Organometallic Chemistry.
[8] M. Buzin,et al. A Novel Ziegler–Natta-Type Catalytic System—TiCl4/2,2′-Dimethoxy-1,1′-Binaphthalene/Et3Al2Cl3/Bu2Mg for Production of Ultrahigh Molecular Weight Polyethylene Nascent Reactor Powders, Suitable for Solvent-Free Processing , 2018, Polymers.
[9] Samir H. Chikkali,et al. Judicious Reduction of Supported Ti Catalyst Enables Access to Disentangled Ultrahigh Molecular Weight Polyethylene , 2018, Macromolecules.
[10] V. Khrustalev,et al. Novel titanium(IV) complexes stabilized by 2-hydroxybenzyl alcohol derivatives as catalysts for UHMWPE production , 2017, Journal of Organometallic Chemistry.
[11] M. Buzin,et al. Titanium(III, IV)-Containing Catalytic Systems for Production of Ultrahigh Molecular Weight Polyethylene Nascent Reactor Powders, Suitable for Solventless Processing—Impact of Oxidation States of Transition Metal , 2017, Polymers.
[12] S. Mecking,et al. Pentafluorosulfanyl Substituents in Polymerization Catalysis. , 2017, Journal of the American Chemical Society.
[13] S. Rastogi,et al. Correlation between Thermal and Mechanical Response of Nascent Semicrystalline UHMWPEs , 2017 .
[14] S. Ronca,et al. Synthesis of Disentangled Ultra-High Molecular Weight Polyethylene: Influence of Reaction Medium on Material Properties , 2017 .
[15] Yefeng Yao,et al. Heterogeneous Distribution of Entanglements in a Nonequilibrium Polymer Melt of UHMWPE: Influence on Crystallization without and with Graphene Oxide , 2016 .
[16] S. Ivanchev,et al. Optimization of the conditions of ethylene polymerization into reactor powders of ultra-high-molecular-weight polyethylene suitable for solid-phase formation into oriented ultra-high-strength and ultra-high-modulus film yarns , 2016, Doklady Physical Chemistry.
[17] T. Wyatt,et al. Gel spinning of UHMWPE fibers with polybutene as a new spin solvent , 2016 .
[18] E. Andablo-Reyes,et al. Aluminoxane co-catalysts for the activation of a bis phenoxyimine titanium (IV) catalyst in the synthesis of disentangled ultra-high molecular weight polyethylene , 2015 .
[19] S. Ronca,et al. Solvent-Free Solid-State-Processed Tapes of Ultrahigh-Molecular-Weight Polyethylene: Influence of Molar Mass and Molar Mass Distribution on the Tensile Properties , 2015 .
[20] S. Ronca,et al. A hemi-metallocene chromium catalyst with trimethylaluminum-free methylaluminoxane for the synthesis of disentangled ultra-high molecular weight polyethylene. , 2015, Macromolecular rapid communications.
[21] E. Andablo-Reyes,et al. Influence of Polymerization Conditions on Melting Kinetics of Low Entangled UHMWPE and Its Implications on Mechanical Properties , 2014 .
[22] Yefeng Yao,et al. Segmental mobility in the noncrystalline regions of nascent polyethylene synthesized using two different catalytic systems with implications on solid-state deformation , 2013 .
[23] E. Andablo-Reyes,et al. Improving the performance of a catalytic system for the synthesis of ultra high molecular weight polyethylene with a reduced number of entanglements , 2012 .
[24] Yefeng Yao,et al. Tailoring molecular structure via nanoparticles for solvent-free processing of ultra-high molecular weight polyethylene composites , 2012 .
[25] Yefeng Yao,et al. Unprecedented High-Modulus High-Strength Tapes and Films of Ultrahigh Molecular Weight Polyethylene via Solvent-Free Route , 2011 .
[26] S. Rastogi,et al. Heterogeneity in the Distribution of Entanglement Density during Polymerization in Disentangled Ultrahigh Molecular Weight Polyethylene , 2011 .
[27] Ran Liu,et al. Effect of cocatalysts on ethylene polymerization with fluorinated bisphenoxyimine titanium as a catalyst , 2011 .
[28] G. G. Peters,et al. Molar Mass and Molecular Weight Distribution Determination Of UHMWPE Synthesized Using a Living Homogeneous Catalyst , 2010 .
[29] Shashikant Sharma,et al. Synthesis of Ultrahigh Molecular Weight Polyethylene Using Traditional Heterogeneous Ziegler−Natta Catalyst Systems , 2009 .
[30] Yefeng Yao,et al. Restricted segmental mobility can facilitate medium-range chain diffusion: A NMR study of morphological influence on chain dynamics of polyethylene , 2008 .
[31] T. Fujita,et al. MgCl2/R'nAl(OR)3-n: an excellent activator/support for transition-metal complexes for olefin polymerization. , 2006, Chemistry.
[32] Robert Graf,et al. Heterogeneity in polymer melts from melting of polymer crystals , 2005, Nature materials.
[33] G. G. Peters,et al. Rheology and reptation of linear polymers. Ultrahigh molecular weight chain dynamics in the melt , 2004 .
[34] T. Fujita,et al. Olefin polymerization behavior of bis(phenoxy-imine) Zr, Ti, and V complexes with MgCl2-based cocatalysts , 2004 .
[35] T. Fujita,et al. Development of Single-Site New Olefin Polymerization Catalyst Systems Using MgCl2-Based Activators: MAO-Free MgCl2-Supported FI Catalyst Systems , 2004 .
[36] H. Pritzkow,et al. New Chromium(III) Complexes as Highly Active Catalysts for Olefin Polymerization , 2001 .
[37] K. Schmidt-Rohr,et al. Chain diffusion between crystalline and amorphous regions in polyethylene detected by 2D exchange carbon-13 NMR , 1991 .