Optical 3D printing: bridging the gaps in the mesoscale

Article Properties
Cite
Jonušauskas, Linas, et al. “Optical 3D Printing: Bridging the Gaps in the Mesoscale”. Journal of Optics, vol. 20, no. 5, 2018, p. 053001, https://doi.org/10.1088/2040-8986/aab3fe.
Jonušauskas, L., Juodkazis, S., & Malinauskas, M. (2018). Optical 3D printing: bridging the gaps in the mesoscale. Journal of Optics, 20(5), 053001. https://doi.org/10.1088/2040-8986/aab3fe
Jonušauskas, Linas, Saulius Juodkazis, and Mangirdas Malinauskas. “Optical 3D Printing: Bridging the Gaps in the Mesoscale”. Journal of Optics 20, no. 5 (2018): 053001. https://doi.org/10.1088/2040-8986/aab3fe.
Jonušauskas L, Juodkazis S, Malinauskas M. Optical 3D printing: bridging the gaps in the mesoscale. Journal of Optics. 2018;20(5):053001.
Journal Categories
Science
Physics
Science
Physics
Acoustics
Sound
Science
Physics
Optics
Light
Technology
Chemical technology
Technology
Electrical engineering
Electronics
Nuclear engineering
Materials of engineering and construction
Mechanics of materials
Technology
Engineering (General)
Civil engineering (General)
Applied optics
Photonics
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  • Science: Chemistry
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  • 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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  • Technology: Electrical engineering. Electronics. Nuclear engineering: Materials of engineering and construction. Mechanics of materials
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  • Technology: Engineering (General). Civil engineering (General)
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Citations Analysis
Category Category Repetition
Technology: Chemical technology27
Science: Physics24
Technology: Electrical engineering. Electronics. Nuclear engineering: Materials of engineering and construction. Mechanics of materials24
Science: Chemistry23
Technology: Engineering (General). Civil engineering (General)17
Science: Physics: Optics. Light11
Technology: Engineering (General). Civil engineering (General): Applied optics. Photonics9
Technology: Manufactures8
Science: Mathematics: Instruments and machines7
Technology: Mechanical engineering and machinery7
Technology: Technology (General): Industrial engineering. Management engineering7
Science: Chemistry: Physical and theoretical chemistry6
Science: Chemistry: General. Including alchemy5
Science: Chemistry: Analytical chemistry4
Science4
Science: Physics: Acoustics. Sound3
Medicine3
Science: Science (General)3
Technology: Chemical technology: Biotechnology3
Medicine: Medicine (General): Medical technology3
Technology: Electrical engineering. Electronics. Nuclear engineering: Electric apparatus and materials. Electric circuits. Electric networks2
Technology: Engineering (General). Civil engineering (General): Environmental engineering1
Technology: Chemical technology: Chemical engineering1
Technology: Mining engineering. Metallurgy1
Science: Biology (General)1
Science: Biology (General): Genetics1
Medicine: Internal medicine: Specialties of internal medicine: Diseases of the circulatory (Cardiovascular) system1
Medicine: Medicine (General)1
Technology: Technology (General): Industrial engineering. Management engineering: Applied mathematics. Quantitative methods1
Science: Mathematics1
Technology: Technology (General): Industrial engineering. Management engineering: Production capacity. Manufacturing capacity1
Technology: Chemical technology: Polymers and polymer manufacture1
Technology1
Social Sciences: Industries. Land use. Labor: Special industries and trades: Manufacturing industries1
Technology: Engineering (General). Civil engineering (General): Plasma engineering. Applied plasma dynamics1
The category Technology: Chemical technology 27 is the most commonly referenced area in studies that cite this article. The first research to cite this article was titled Scaffolds in a shell–a new approach combining one-photon and two-photon polymerization and was published in 2018. The most recent citation comes from a 2024 study titled A Computational Evaluation of Minimum Feature Size in Projection Two-Photon Lithography for Rapid Sub-100 nm Additive Manufacturing. This article reached its peak citation in 2019, with 16 citations. It has been cited in 44 different journals, 43% of which are open access. Among related journals, the Micromachines cited this research the most, with 3 citations. The chart below illustrates the annual citation trends for this article.
Citations used this article by year