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Chemistry

D-Index
71
Citations
15865
World Ranking
5647
National Ranking
140

Overview

Glenn Hefter is affiliated with Murdoch University in Australia and has a research focus spanning multiple areas within chemical engineering and chemistry. Their publication record highlights contributions to the study of chemical and physical properties in aqueous solutions, thermodynamic properties of mixtures, chemical thermodynamics and molecular structure, as well as applied spectroscopy techniques.

The scientist's key research topics include:

  • Chemical and Physical Properties in Aqueous Solutions
  • Thermodynamic properties of mixtures
  • Chemical Thermodynamics and Molecular Structure
  • Spectroscopy and Quantum Chemical Studies
  • Phase Equilibria and Thermodynamics
  • Electrochemical Analysis and Applications
  • Radioactive element chemistry and processing

Main fields of study reflect a strong emphasis on the integration of chemical engineering and chemistry principles, with an interest in processes related to filtration, separation, fluid flow, and transfer. Subfields of particular relevance to Hefter's work include filtration and separation, fluid flow and transfer processes, organic chemistry, biomedical engineering, and atomic and molecular physics alongside optics.

Frequent publication venues underscore the scientist's active contribution to specialized journals within the field, highlighting:

  • Journal of Chemical & Engineering Data
  • Pure and Applied Chemistry
  • Fuel
  • IUPAC Standards Online
  • Journal of Molecular Liquids

Prominent recurring collaborators associated with Glenn Hefter's research include L. Hnědkovský, Tuomas Vielma, Joseph W. Magee, Xiong Xiao, and M. Clara F. Magalhães.

Among the recent papers authored or co-authored by Hefter are:

  • "Reference materials for phase equilibrium studies. 2. Solid-liquid equilibria (IUPAC Technical Report)", 2022, published in Pure and Applied Chemistry
  • "Isobaric heat capacities of a methane (1) + propane (2) mixture by differential scanning calorimetry at near-critical and supercritical conditions", 2020, published in Fuel
  • "A spectroscopic study of solvent effects on the formation of Cu(ii)-chloride complexes in aqueous solution", 2021, published in Physical Chemistry Chemical Physics
  • "Isobaric heat capacity measurements of natural gas model mixtures (methane + n-heptane) and (propane + n-heptane) by differential scanning calorimetry at temperatures from 313 K to 422 K and pressures up to 31 MPa", 2021, published in Fuel
  • "Dielectric relaxation spectroscopy: an old-but-new technique for the investigation of electrolyte solutions", 2020, published in Pure and Applied Chemistry

Best Publications

  • Ion pairing.

    Unknown

  • Dielectric relaxation of aqueous NaCl solutions

    Richard Buchner;Glenn T. Hefter;Peter M. May

  • Complexity in "simple" electrolyte solutions: Ion pairing in MgSO4(aq)

    Richard Buchner;Ting Chen;Glenn Hefter

  • Interactions and dynamics in electrolyte solutions by dielectric spectroscopy

    Richard Buchner;Glenn Hefter

  • Standard partial molar volumes of electrolytes and ions in nonaqueous solvents.

    Yizhak Marcus;Glenn Hefter

  • Dynamics of Imidazolium Ionic Liquids from a Combined Dielectric Relaxation and Optical Kerr Effect Study: Evidence for Mesoscopic Aggregation

    David A. Turton;Johannes Hunger;Alexander Stoppa;Glenn Hefter

  • Chemical speciation of environmentally significant heavy metals with inorganic ligands. Part 1: The Hg 2+ – Cl – , OH – , CO 3 2– , SO 4 2– , and PO 4 3– aqueous systems (IUPAC Technical Report)

    Kipton J. Powell;Paul L. Brown;Robert H. Byrne;Tamás Gajda

  • Raman spectroscopic investigation of speciation in MgSO4(aq)

    W. W. Rudolph;W. W. Rudolph;G. Irmer;G. T. Hefter

  • Temperature dependence of the dielectric properties and dynamics of ionic liquids.

    Johannes Hunger;Alexander Stoppa;Simon Schrödle;Glenn Hefter

  • Gibbs energies of transfer of anions from water to mixed aqueous organic solvents.

    Yizhak Marcus

  • Chemical speciation of environmentally significant metals with inorganic ligands. Part 5: The Zn2+ + OH–, Cl–, CO32–, SO42–, and PO43– systems (IUPAC Technical Report)

    Kipton J. Powell;Paul L. Brown;Robert H. Byrne;Tamas Gajda

  • Is there an anionic Hofmeister effect on water dynamics? Dielectric spectroscopy of aqueous solutions of NaBr, NaI, NaNO3, NaClO4, and NaSCN

    Wolfgang Wachter;Werner Kunz;Richard Buchner;Glenn Hefter

  • ION-PAIR AND SOLVENT RELAXATION PROCESSES IN AQUEOUS NA2SO4 SOLUTIONS

    Richard Buchner;Stephen G. Capewell;Glenn Hefter;Peter M. May

  • Chemical speciation of environmentally significant metals with inorganic ligands. Part 3: The Pb2+ + OH-, Cl -, CO3 2-, SO42-, and PO 43- systems (IUPAC Technical Report)

    Kipton J. Powell;Paul L. Brown;Robert H. Byrne;Tamas Gajda

  • Dielectric spectroscopy of aqueous solutions of KCl and CsCl

    Ting Chen;Glenn Hefter;Richard Buchner

  • Enthalpies and Entropies of Transfer of Electrolytes and Ions from Water to Mixed Aqueous Organic Solvents

    Glenn Hefter;Yizhak Marcus;W. Earle Waghorne

  • Complexation of iron (III) and iron (II) by citrate. Implications for iron speciation in blood plasma

    Lan-Chi Königsberger;Erich Königsberger;Peter M May;Glenn T Hefter

  • Interactions and dynamics in ionic liquids

    Alexander Stoppa;Johannes Hunger;Richard Buchner;Glenn Hefter

  • How ideal are binary mixtures of room-temperature ionic liquids? ☆

    Alexander Stoppa;Richard Buchner;Glenn Hefter

  • Ion association and hydration in aqueous solutions of LiCl and Li2SO4 by dielectric spectroscopy.

    Wolfgang Wachter;Sarka Fernandez;Richard Buchner;Glenn Hefter

  • Chemical speciation of environmentally significant metals with inorganic ligands Part 2: The Cu2+-OH-, Cl-, CO32-, SO42-, and PO43- systems (IUPAC Technical Report)

    Unknown

  • Chemical Speciation of Environmentally Significant Metals with Inorganic Ligands. Part 2. The Cu2+—OH-, Cl-, CO32-, SO42-, and PO43- Systems (IUPAC Technical Report)

    Kipton J. Powell;Paul L. Brown;Robert H. Byrne;Tamas Gajda

Frequent Co-Authors

Peter M. May
Peter M. May Trinity College Dublin
Richard Buchner
Richard Buchner University of Regensburg
Johannes Hunger
Johannes Hunger Max Planck Institute for Polymer Research
Yizhak Marcus
Yizhak Marcus Hebrew University of Jerusalem
Markus Walther
Markus Walther Friedrich Schiller University Jena
Alan M. Bond
Alan M. Bond Monash University
Staffan Sjöberg
Staffan Sjöberg Umeå University
Robert H. Byrne
Robert H. Byrne University of South Florida
Werner Kunz
Werner Kunz University of Regensburg
Vladimír Majer
Vladimír Majer Technical University of Liberec

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