A complete table of electronegativities

Article Properties
Cite
Little, Elbert J., and Mark M. Jones. “A Complete Table of Electronegativities”. Journal of Chemical Education, vol. 37, no. 5, 1960, p. 231, https://doi.org/10.1021/ed037p231.
Little, E. J., & Jones, M. M. (1960). A complete table of electronegativities. Journal of Chemical Education, 37(5), 231. https://doi.org/10.1021/ed037p231
Little, Elbert J., and Mark M. Jones. “A Complete Table of Electronegativities”. Journal of Chemical Education 37, no. 5 (1960): 231. https://doi.org/10.1021/ed037p231.
Little EJ, Jones MM. A complete table of electronegativities. Journal of Chemical Education. 1960;37(5):231.
Citations
Title Journal Journal Categories Citations Publication Date
Dominant mechanisms of thermo-mechanical properties of weberite-type RE3TaO7 (RE=La, Pr, Nd, Eu, Gd, Dy) tantalates toward multifunctional thermal/environmental barrier coating applications Acta Materialia
  • Science: Chemistry
  • Technology: Mining engineering. Metallurgy
  • Technology: Electrical engineering. Electronics. Nuclear engineering: Materials of engineering and construction. Mechanics of materials
  • Technology: Chemical technology
  • Technology: Electrical engineering. Electronics. Nuclear engineering: Materials of engineering and construction. Mechanics of materials
  • Technology: Electrical engineering. Electronics. Nuclear engineering: Materials of engineering and construction. Mechanics of materials
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Ta/Nb doping motivating cubic phase stability and CO2 tolerance of Sr2Co1.6Fe0.4O6-δ double perovskite for high-performing SOFC cathode Ceramics International
  • Technology: Electrical engineering. Electronics. Nuclear engineering: Materials of engineering and construction. Mechanics of materials
  • Technology: Chemical technology: Clay industries. Ceramics. Glass
  • Technology: Chemical technology
  • Technology: Electrical engineering. Electronics. Nuclear engineering: Materials of engineering and construction. Mechanics of materials
  • Technology: Electrical engineering. Electronics. Nuclear engineering: Materials of engineering and construction. Mechanics of materials
1 2024
Protonic ceramics Ba5In2–Y Al2ZrO13 with the perovskite-related hexagonal structure for solid oxide fuel cells: Synthesis, optical band gap and transport properties Ceramics International
  • Technology: Electrical engineering. Electronics. Nuclear engineering: Materials of engineering and construction. Mechanics of materials
  • Technology: Chemical technology: Clay industries. Ceramics. Glass
  • Technology: Chemical technology
  • Technology: Electrical engineering. Electronics. Nuclear engineering: Materials of engineering and construction. Mechanics of materials
  • Technology: Electrical engineering. Electronics. Nuclear engineering: Materials of engineering and construction. Mechanics of materials
2024
The structure and electrical properties of novel BaSn0.15Ce0.35Hf0.25Y0.1Yb0.1Ho0.05O3-δ high-entropy proton-conducting electrolyte Journal of Alloys and Compounds
  • Science: Chemistry: Physical and theoretical chemistry
  • Science: Chemistry
  • Technology: Mining engineering. Metallurgy
  • Technology: Chemical technology
  • Technology: Electrical engineering. Electronics. Nuclear engineering: Materials of engineering and construction. Mechanics of materials
  • Technology: Electrical engineering. Electronics. Nuclear engineering: Materials of engineering and construction. Mechanics of materials
2024
Emission modulation of Eu3+ via symmetry around dodecahedron in garnet-type Ca2EuZr2-Sn Ga3O12 (x = 0, 0.5, 1, 1.5, and 2) phosphors Journal of Luminescence
  • Technology: Chemical technology
  • Technology: Electrical engineering. Electronics. Nuclear engineering: Materials of engineering and construction. Mechanics of materials
  • Science: Physics: Optics. Light
  • Science: Physics
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Citations Analysis
Category Category Repetition
Science: Chemistry110
Technology: Electrical engineering. Electronics. Nuclear engineering: Materials of engineering and construction. Mechanics of materials61
Science: Chemistry: Physical and theoretical chemistry60
Technology: Chemical technology58
Science: Physics38
Science: Chemistry: General. Including alchemy27
Science: Chemistry: Inorganic chemistry18
Science: Physics: Atomic physics. Constitution and properties of matter15
Technology: Mining engineering. Metallurgy13
Science: Chemistry: Analytical chemistry12
Science: Physics: Nuclear and particle physics. Atomic energy. Radioactivity12
Technology: Chemical technology: Clay industries. Ceramics. Glass7
Science: Chemistry: Organic chemistry6
Technology: Chemical technology: Polymers and polymer manufacture6
Science: Geology5
Science: Chemistry: Crystallography3
Social Sciences: Industries. Land use. Labor: Special industries and trades: Energy industries. Energy policy. Fuel trade3
Science: Chemistry: Organic chemistry: Biochemistry2
Science: Physics: Optics. Light2
Medicine: Internal medicine: Neurosciences. Biological psychiatry. Neuropsychiatry1
Philosophy. Psychology. Religion: Psychology1
Medicine: Therapeutics. Pharmacology1
Science: Science (General): Cybernetics: Information theory1
Science: Mathematics: Instruments and machines: Electronic computers. Computer science1
Geography. Anthropology. Recreation: Environmental sciences1
Technology: Environmental technology. Sanitary engineering1
Science: Biology (General): Ecology1
Science: Biology (General)1
Science: Mathematics1
Technology: Electrical engineering. Electronics. Nuclear engineering: Electric apparatus and materials. Electric circuits. Electric networks1
Science: Physics: Acoustics. Sound1
Technology: Electrical engineering. Electronics. Nuclear engineering: Nuclear engineering. Atomic power1
Technology: Electrical engineering. Electronics. Nuclear engineering1
Technology: Engineering (General). Civil engineering (General): Mechanics of engineering. Applied mechanics1
Science1
Technology1
Science: Science (General)1
The category Science: Chemistry 110 is the most commonly referenced area in studies that cite this article. The first research to cite this article was titled Catalytic cleavage of dimethylcyclosiloxanes in presence of dichlorodimethylsilane and was published in 1962. The most recent citation comes from a 2024 study titled Protonic ceramics Ba5In2–Y Al2ZrO13 with the perovskite-related hexagonal structure for solid oxide fuel cells: Synthesis, optical band gap and transport properties. This article reached its peak citation in 2022, with 17 citations. It has been cited in 107 different journals, 3% of which are open access. Among related journals, the Inorganic Chemistry cited this research the most, with 6 citations. The chart below illustrates the annual citation trends for this article.
Citations used this article by year