High pressure and high temperature phase transformations of covalent triazine-based frameworks

[1]  Jia-ling Wang,et al.  Facile synthesis of activated carbon loaded g-C3N4 composite with enhanced photocatalytic performance under visible light , 2023, Diamond and Related Materials.

[2]  A. Kvashnin,et al.  Surface Tamm States of 2–5 nm Nanodiamond via Raman Spectroscopy , 2023, Nanomaterials.

[3]  Longfei Liao,et al.  Advances in the Synthesis of Covalent Triazine Frameworks , 2023, ACS Omega.

[4]  B. Tan,et al.  Covalent Triazine Frameworks (CTFs): Synthesis, Crystallization, and Photocatalytic Water Splitting. , 2022, Chemistry.

[5]  V. Blank,et al.  The effect of C60 fullerene polymerization processes on the mechanical properties of clusters forming ultrahard structures of 3D C60 polymers , 2022, Diamond and Related Materials.

[6]  Xinchen Wang,et al.  Ionothermal Synthesis of Covalent Triazine Frameworks in NaCl-KCl-ZnCl2 Eutectic Salt for Hydrogen Evolution Reaction. , 2022, Angewandte Chemie.

[7]  Bingbing Liu,et al.  Ultrahard bulk amorphous carbon from collapsed fullerene , 2021, Nature.

[8]  V. Blank,et al.  The Effect of Shear Deformation on C-N Structure under Pressure up to 80 GPa , 2021, Nanomaterials.

[9]  E. Swift A durable semiconductor photocatalyst , 2019, Science.

[10]  Liping Guo,et al.  Covalent triazine frameworks: synthesis and applications , 2019, Journal of Materials Chemistry A.

[11]  I. Troyan,et al.  Simultaneous measurements of the two-dimensional distribution of infrared laser intensity and temperature in a single-sided laser-heated diamond anvil cell , 2019, Comptes Rendus Geoscience.

[12]  Dougal G. McCulloch,et al.  In situ analysis of the structural transformation of glassy carbon under compression at room temperature , 2019, Physical Review B.

[13]  A. Machikhin,et al.  Measurement of the temperature distribution on the surface of the laser heated specimen in a diamond anvil cell system by the tandem imaging acousto-optical filter , 2019, High Pressure Research.

[14]  J. Baek,et al.  Direct Synthesis of a Covalent Triazine-Based Framework from Aromatic Amides. , 2018, Angewandte Chemie.

[15]  T. Bein,et al.  Covalent Organic Frameworks: Structures, Synthesis, and Applications , 2018, Advanced Functional Materials.

[16]  P. Sorokin,et al.  Phase diagram of carbon and the factors limiting the quantity and size of natural diamonds , 2018, Nanotechnology.

[17]  Bingbing Liu,et al.  Uniaxial-stress-driven transformation in cold compressed glassy carbon , 2017 .

[18]  V. Blank,et al.  Transformation of multiwall carbon nanotubes to onions with layers cross-linked by sp3 bonds under high pressure and shear deformation , 2017 .

[19]  Bingbing Liu,et al.  Novel Superhard sp^{3} Carbon Allotrope from Cold-Compressed C_{70} Peapods. , 2017, Physical review letters.

[20]  P. Sorokin,et al.  The unexpected stability of multiwall nanotubes under high pressure and shear deformation , 2016 .

[21]  Shiv k. Sharma,et al.  Anomalous fluorescence of the spherical carbon nitride nanostructures , 2015 .

[22]  Fei Wang,et al.  Tailoring Building Blocks and Their Boundary Interaction for the Creation of New, Potentially Superhard, Carbon Materials , 2015, Advanced materials.

[23]  V. Mordkovich,et al.  Synthesis of ultrahard fullerite with a catalytic 3D polymerization reaction of C60 , 2014 .

[24]  V. Prakapenka,et al.  Formation of the high pressure graphite and BC8 phases in a cold compression experiment by Raman scattering , 2013 .

[25]  W. Mao,et al.  Elastic and inelastic behavior of graphitic C3N4 under high pressure , 2013 .

[26]  T. Yagi,et al.  Bulk modulus and structural changes of carbon nitride C2N2(CH2) under pressure: The strength of C–N single bond , 2013 .

[27]  S. Sinogeikin,et al.  Long-Range Ordered Carbon Clusters: A Crystalline Material with Amorphous Building Blocks , 2012, Science.

[28]  A. Cooper,et al.  Porous, Fluorescent, Covalent Triazine‐Based Frameworks Via Room‐Temperature and Microwave‐Assisted Synthesis , 2012, Advanced materials.

[29]  H. Mao,et al.  Amorphous diamond: a high-pressure superhard carbon allotrope. , 2011, Physical review letters.

[30]  M. Antonietti,et al.  Rational Extension of the Family of Layered, Covalent, Triazine‐Based Frameworks with Regular Porosity , 2010, Advanced materials.

[31]  Shiv k. Sharma,et al.  Ultraviolet and near-infrared Raman spectroscopy of graphitic C3N4 phase , 2009 .

[32]  Markus Antonietti,et al.  Porous, covalent triazine-based frameworks prepared by ionothermal synthesis. , 2008, Angewandte Chemie.

[33]  P. Hoppe,et al.  High-pressure synthesis of crystalline carbon nitride imide, C2N2(NH). , 2007, Angewandte Chemie.

[34]  Y. Meng,et al.  A cubic phase of C3N4 synthesized in the diamond-anvil cell , 2006 .

[35]  F. Weigend,et al.  Balanced basis sets of split valence, triple zeta valence and quadruple zeta valence quality for H to Rn: Design and assessment of accuracy. , 2005, Physical chemistry chemical physics : PCCP.

[36]  J. Robertson,et al.  Raman spectroscopy of amorphous, nanostructured, diamond–like carbon, and nanodiamond , 2004, Philosophical Transactions of the Royal Society of London. Series A: Mathematical, Physical and Engineering Sciences.

[37]  M. Popov Pressure measurements from raman spectra of stressed diamond anvils , 2004 .

[38]  Peter J. Eng,et al.  Bonding Changes in Compressed Superhard Graphite , 2003, Science.

[39]  R. Riedel,et al.  Synthesis of cubic zirconium and hafnium nitride having Th3P4 structure , 2003, Nature materials.

[40]  M. Kyotani,et al.  Superhard phase of single wall carbon nanotube: comparison with fullerite C60 and diamond , 2003 .

[41]  John Robertson,et al.  Resonant Raman spectroscopy of disordered, amorphous, and diamondlike carbon , 2001 .

[42]  F. Mauri,et al.  Theory of resonant Raman scattering of tetrahedral amorphous carbon , 2001, cond-mat/0103028.

[43]  V. Barone,et al.  Toward reliable density functional methods without adjustable parameters: The PBE0 model , 1999 .

[44]  P. Larkin,et al.  Vibrational analysis of some important group frequencies of melamine derivatives containing methoxymethyl, and carbamate substituents: mechanical coupling of substituent vibrations with triazine ring modes , 1998 .

[45]  V. N. Reshetov,et al.  Ultrahard and superhard phases of fullerite C60: Comparison with diamond on hardness and wear , 1998 .

[46]  A. N. Ivlev,et al.  Phase transformations in solid C60 at high-pressure-high-temperature treatment and the structure of 3D polymerized fullerites , 1996 .

[47]  Mark S. Gordon,et al.  General atomic and molecular electronic structure system , 1993, J. Comput. Chem..

[48]  A. Goncharov Graphite at high pressures: Pseudomelting at 44 GPa , 1992 .

[49]  A. Liu,et al.  Prediction of New Low Compressibility Solids , 1989, Science.

[50]  S. Mandal,et al.  Nitrogen-rich covalent organic frameworks: a promising class of sensory materials , 2021, Materials Advances.

[51]  Michael Sung,et al.  Carbon nitride and other speculative superhard materials , 1996 .

[52]  R. Zallen,et al.  Pressure-Raman effects in covalent and molecular solids , 1984 .