Catalytic upcycling of high-density polyethylene via a processive mechanism
暂无分享,去创建一个
Ryan A. Hackler | Anne M. LaPointe | S. C. Ammal | Andreas Heyden | B. Peters | G. Coates | Wenyu Huang | I. Slowing | A. Sadow | Igor I. Slowing | M. Delferro | Yuchen Pei | Frédéric A. Perras | A. L. Paterson | Xun Wu | A. Tennakoon | Smita Patnaik | F. Perras
[1] R. Dahlstrom,et al. Challenges and opportunities , 2021, Foundations of a Sustainable Economy.
[2] Robin J. White,et al. Beyond Mechanical Recycling: Giving New Life to Plastic Waste , 2020, Angewandte Chemie.
[3] Andreas Heyden,et al. Upcycling Single-Use Polyethylene into High-Quality Liquid Products , 2019, ACS central science.
[4] Seth M. Cohen,et al. Polymer Infiltration into Metal-Organic Frameworks in Mixed-Matrix Membranes Detected in Situ by NMR. , 2019, Journal of the American Chemical Society.
[5] Fiona L. Kearns,et al. Characterization and engineering of a plastic-degrading aromatic polyesterase , 2018, Proceedings of the National Academy of Sciences.
[6] Ning Fang,et al. In situ quantitative single-molecule study of dynamic catalytic processes in nanoconfinement , 2018, Nature Catalysis.
[7] Sang Yup Lee,et al. Structural insight into molecular mechanism of poly(ethylene terephthalate) degradation , 2018, Nature Communications.
[8] T. Ko,et al. Structural insight into catalytic mechanism of PET hydrolase , 2017, Nature Communications.
[9] M. Hakkarainen,et al. Trash to Treasure : Microwave-Assisted Conversion of Polyethylene to Functional Chemicals , 2017 .
[10] B. Sumerlin,et al. Synthetic upcycling of polyacrylates through organocatalyzed post-polymerization modification , 2017, Chemical science.
[11] Jeung Gon Kim. Direct transesterification of poly(methyl acrylate) for functional polyacrylate syntheses , 2017 .
[12] C. Hawker,et al. Direct Access to Functional (Meth)acrylate Copolymers through Transesterification with Lithium Alkoxides. , 2017, Journal of polymer science. Part A, Polymer chemistry.
[13] Jeannette M. Garcia,et al. Catalyst: Design Challenges for the Future of Plastics Recycling , 2016 .
[14] C. Barner‐Kowollik,et al. Polybutadiene Functionalization via an Efficient Avenue. , 2016, ACS macro letters.
[15] Z. Guan,et al. Efficient and selective degradation of polyethylenes into liquid fuels and waxes under mild conditions , 2016, Science Advances.
[16] D. Deng,et al. Trash to Treasure: Transforming Waste Polystyrene Cups into Negative Electrode Materials for Sodium Ion Batteries , 2015 .
[17] J. Speight. Handbook of Petroleum Product Analysis: Speight/Handbook of Petroleum Product Analysis , 2014 .
[18] Paul T. Williams,et al. Processing real-world waste plastics by pyrolysis-reforming for hydrogen and high-value carbon nanotubes. , 2014, Environmental science & technology.
[19] E. Iglesia,et al. Transition-state enthalpy and entropy effects on reactivity and selectivity in hydrogenolysis of n-alkanes. , 2013, Journal of the American Chemical Society.
[20] D. Rudner,et al. CtpB Assembles a Gated Protease Tunnel Regulating Cell-Cell Signaling during Spore Formation in Bacillus subtilis , 2013, Cell.
[21] Zhiyong Guo,et al. High-temperature-stable and regenerable catalysts: platinum nanoparticles in aligned mesoporous silica wells. , 2013, ChemSusChem.
[22] Jing Wei,et al. Multifunctional mesoporous composite microspheres with well-designed nanostructure: a highly integrated catalyst system. , 2010, Journal of the American Chemical Society.
[23] V. Pol,et al. Upcycling: converting waste plastics into paramagnetic, conducting, solid, pure carbon microspheres. , 2010, Environmental science & technology.
[24] F. Blum,et al. Plasticization of Adsorbed Poly(vinyl acetate) on Silica by Deuterium Solid-State NMR , 2009 .
[25] Robert E. Dvorak,et al. Plastics recycling: challenges and opportunities , 2009, Philosophical Transactions of the Royal Society B: Biological Sciences.
[26] P. Granger,et al. Further conventions for NMR shielding and chemical shifts (IUPAC Recommendations 2008) , 2008, Magnetic resonance in chemistry : MRC.
[27] Lei Zhang,et al. Chemical Composition of Group II Lubricant Oil Studied by High-Resolution Gas Chromatography and Comprehensive Two-Dimensional Gas Chromatography , 2007 .
[28] Shaoping Xu,et al. A Comparison of NiMo/Al2O3 Catalysts Prepared by Impregnation and Coprecipitation Methods for Hydrodesulfurization of Dibenzothiophene , 2007 .
[29] Hajime Niwa,et al. Structure of the whole cytosolic region of ATP-dependent protease FtsH. , 2006, Molecular cell.
[30] M. Hillmyer,et al. Regiospecific side-chain functionalization of linear low-density polyethylene with polar groups. , 2005, Angewandte Chemie.
[31] M. Hillmyer,et al. Post-polymerization functionalization of polyolefins. , 2005, Chemical Society reviews.
[32] J. Hartwig,et al. Catalytic Hydroxylation of Polyethylenes , 2005, ACS central science.
[33] V. S. Lin,et al. Oxidative polymerization of 1,4-diethynylbenzene into highly conjugated poly(phenylene butadiynylene) within the channels of surface-functionalized mesoporous silica and alumina materials. , 2002, Journal of the American Chemical Society.
[34] Nicole L. Wagner,et al. Rhodium-catalyzed, regiospecific functionalization of polyolefins in the melt. , 2002, Journal of the American Chemical Society.
[35] B. Matthews,et al. A structural basis for processivity , 2001, Protein science : a publication of the Protein Society.
[36] L. Reven,et al. Self-Assembled Monolayers of Alkanoic Acids: A Solid-State NMR Study , 2000 .
[37] I. Ando,et al. Structural characterization of 13C-labeled n-tetracosane adsorbed on the surface of silica gel by high-resolution solid-state 13C NMR spectroscopy , 2000 .
[38] V. Dufaud,et al. Catalytic Hydrogenolysis at Low Temperature and Pressure of Polyethylene and Polypropylene to Diesels or Lower Alkanes by a Zirconium Hydride Supported on Silica-Alumina: A Step Toward Polyolefin Degradation by the Microscopic Reverse of Ziegler-Natta Polymerization. , 1998, Angewandte Chemie.
[39] F. Blum,et al. Segmental Dynamics of Bulk and Adsorbed Poly(methyl Acrylate)-d3 by Deuterium NMR: Effect of Adsorbed Amount , 1997 .
[40] A. Lesage,et al. Determination of Through-Bond Carbon−Carbon Connectivities in Solid-State NMR Using the INADEQUATE Experiment , 1997 .
[41] C. Grozinger,et al. Order−Disorder Transitions in Self-Assembled Monolayers: A 13C Solid-State NMR Study , 1997 .
[42] J. E. Mark,et al. Nanocomposites Prepared by Threading Polymer Chains through Zeolites, Mesoporous Silica, or Silica Nanotubes , 1996 .
[43] Qun Chen,et al. Structural and dynamical studies of 13C-labeled polyethylene adsorbed on the surface of silica gel by high-resolution solid-state 13C NMR spectroscopy , 1995 .
[44] D. P. Burum,et al. Temperature Dependence of 207 Pb MAS Spectra of Solid Lead Nitrate. An Accurate, Sensitive Thermometer for Variable-Temperature MAS , 1995 .
[45] L. Reven,et al. Solid-State NMR Studies of Self-Assembled Monolayers , 1995 .
[46] D. D. Cornell. Plastics Recycling: An Overview , 1995 .
[47] T. Reinikainen,et al. The three-dimensional crystal structure of the catalytic core of cellobiohydrolase I from Trichoderma reesei. , 1994, Science.
[48] K. Schmidt-Rohr,et al. Chain diffusion between crystalline and amorphous regions in polyethylene detected by 2D exchange carbon-13 NMR , 1991 .
[49] J. Knowles,et al. Three-dimensional structure of cellobiohydrolase II from Trichoderma reesei. , 1990, Science.
[50] D. S. Pearson,et al. Viscosity and self-diffusion coefficient of linear polyethylene , 1987 .
[51] K. Murayama,et al. Phase structure of lamellar crystalline polyethylene by solid-state high-resolution carbon-13 NMR detection of the crystalline-amorphous interphase , 1986 .
[52] A. Tonelli,et al. Carbon-13 NMR chemical shifts and the microstructure of polymers , 1981 .
[53] A. Bax,et al. Natural abundance carbon-13-carbon-13 coupling observed via double-quantum coherence , 1980 .
[54] D. Vanderhart,et al. Observations in Solid Polyethylenes by Carbon-13 Nuclear Magnetic Resonance with Magic Angle Sample Spinning , 1979 .
[55] John S. Waugh,et al. NMR in rotating solids , 1979 .
[56] R. C. Macridis. A review , 1963 .
[57] Halil Murat Aydin,et al. Current approaches to waste polymer utilization and minimization: a review , 2019 .
[58] A. S. Burange,et al. Heterogeneously catalyzed strategies for the deconstruction of high density polyethylene: plastic waste valorisation to fuels , 2015 .
[59] Christina M. Payne,et al. Fungal cellulases. , 2015, Chemical reviews.
[60] P. Mahadevan,et al. An overview , 2007, Journal of Biosciences.
[61] M. Hillmyer,et al. Catalytic hydroxylation of polypropylenes. , 2005, Journal of the American Chemical Society.
[62] F. Blum,et al. Dynamics of Poly(vinyl acetate) in Bulk and on Silica , 1996 .
[63] T. Wood. Fungal cellulases. , 1992, Biochemical Society transactions.
[64] A. Tonelli,et al. Calculated carbon-13 nuclear magnetic resonance chemical shifts for ethylene-vinyl chloride copolymers , 1981 .
[65] H. Elias. Principles of Polymerization , 1977 .
[66] A. G. White. Petroleum and Petroleum Products , 1937, Nature.
[67] J. Oxman,et al. Natural Abundance 13 C13 C Coupling Observed via Double-Quantum Coherence , 2022 .