Uwe T. Bornscheuer

Active 1994–2025

200
Papers
27,456
Citations
90
h-index
187
i10-index

Citations

Citations per year for Uwe T. Bornscheuer1973: 1 citations1993: 3 citations1996: 1 citations1997: 5 citations1998: 21 citations1999: 32 citations2000: 27 citations2001: 43 citations2002: 84 citations2003: 48 citations2004: 88 citations2005: 109 citations2006: 99 citations2007: 110 citations2008: 85 citations2009: 130 citations2010: 170 citations2011: 184 citations2012: 162 citations2013: 219 citations2014: 194 citations2015: 198 citations2016: 196 citations2017: 231 citations2018: 230 citations2019: 699 citations2020: 755 citations2021: 831 citations2022: 697 citations2023: 529 citations2024: 972 citations2025: 558 citations2026: 17 citations1974–1992: no citations, so these years are not shown1994–1995: no citations, so these years are not shown

Citation sources

Countries

World map of the countries and regions citing this authorChina: 1,197 citing papers, 17.8% of this breakdownUnited States: 865 citing papers, 12.9% of this breakdownGermany: 761 citing papers, 11.3% of this breakdownUnited Kingdom: 387 citing papers, 5.8% of this breakdownSpain: 276 citing papers, 4.1% of this breakdownIndia: 240 citing papers, 3.6% of this breakdownNetherlands: 232 citing papers, 3.4% of this breakdownSouth Korea: 195 citing papers, 2.9% of this breakdownFrance: 176 citing papers, 2.6% of this breakdownAustria: 175 citing papers, 2.6% of this breakdownSwitzerland: 163 citing papers, 2.4% of this breakdownDenmark: 154 citing papers, 2.3% of this breakdown
0%17.8%Other 28.3%

Fields

  • Biochemistry, Genetics and Molecular Biology64.2%
  • Engineering7.5%
  • Chemistry6.2%
  • Materials Science6.2%
  • Medicine3.5%
  • Agricultural and Biological Sciences3.3%
  • Other9.1%

Topics

  • Enzyme Catalysis and Immobilization20%
  • Microbial Metabolic Engineering and Bioproduction11.6%
  • Biofuel production and bioconversion3.2%
  • Electrochemical sensors and biosensors3%
  • Chemical Synthesis and Analysis2.6%
  • Innovative Microfluidic and Catalytic Techniques Innovation2.1%
  • Other57.5%

Coauthors

All papers

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  1. Biocatalysis: Enzymatic Synthesis for Industrial Applications

    Authors: , , , , - Angewandte Chemie International Edition 2020 cited by 1,387

  2. From nature to industry: Harnessing enzymes for biocatalysis

    Authors: , , , , , - Science 2023 cited by 667

  3. Engineering the third wave of biocatalysis

    Authors: , , , , , - Nature 2012 cited by 2,618

  4. Recent trends in biocatalysis

    Authors: , , , , , , - Chemical Society Reviews 2021 cited by 369

  5. Opportunities and challenges for combining chemo- and biocatalysis

    Authors: , , , , , - Nature Catalysis 2018 cited by 653

  6. Assessment of Four Engineered PET Degrading Enzymes Considering Large-Scale Industrial Applications

    Authors: , , , , , , , - ACS Catalysis 2023 cited by 245

  7. Data‐Driven Protein Engineering for Improving Catalytic Activity and Selectivity

    Authors: , , , , , - ChemBioChem 2023 cited by 42

  8. Structure‐ and Data‐Driven Protein Engineering of Transaminases for Improving Activity and Stereoselectivity

    Authors: , , , , , , , , , - Angewandte Chemie International Edition 2023 cited by 49

  9. Computers and Human Rights: Toward a UN Code of Computer Ethics

    Authors: , , , - Angewandte Chemie International Edition 1999 cited by 223

  10. Engineering the protein dynamics of an ancestral luciferase

    Authors: , , , , , , , , , , , , , , , , - Nature Communications 2021 cited by 102

  11. Marine Polysaccharides: Occurrence, Enzymatic Degradation and Utilization

    Authors: , , - ChemBioChem 2021 cited by 113

  12. Bioinformatic analysis of a PLP-dependent enzyme superfamily suitable for biocatalytic applications

    Authors: , , , , , , , , , , , - Biotechnology Advances 2015 cited by 229

  13. Possibilities and limitations of biotechnological plastic degradation and recycling

    Authors: , , , , , - Nature Catalysis 2020 cited by 431

  14. Mechanism-Based Design of Efficient PET Hydrolases

    Authors: , , , , , , , , , , - ACS Catalysis 2022 cited by 282

  15. Structure of the plastic-degrading Ideonella sakaiensis MHETase bound to a substrate

    Authors: , , , , , , , , , - Nature Communications 2019 cited by 472

  16. Directed Evolution of a Halide Methyltransferase Enables Biocatalytic Synthesis of Diverse SAM Analogs

    Authors: , , , , , , , - Angewandte Chemie International Edition 2020 cited by 115

  17. Algorithm-aided engineering of aliphatic halogenase WelO5* for the asymmetric late-stage functionalization of soraphens

    Authors: , , , , , , , , , , - Nature Communications 2022 cited by 84

  18. A growth selection system for the directed evolution of amine-forming or converting enzymes

    Authors: , , , , , , , , , - Nature Communications 2022 cited by 55

  19. Practical Machine Learning-Assisted Design Protocol for Protein Engineering: Transaminase Engineering for the Conversion of Bulky Substrates

    Authors: , , - ACS Catalysis 2024 cited by 34

  20. A Retrosynthesis Approach for Biocatalysis in Organic Synthesis

    Authors: , , - Chemistry - A European Journal 2017 cited by 212

  21. Microbial carboxyl esterases: classification, properties and application in biocatalysis

    Authors: - FEMS Microbiology Reviews 2002 cited by 901

  22. Fatty Acids and their Derivatives as Renewable Platform Molecules for the Chemical Industry

    Authors: , , , , - Angewandte Chemie International Edition 2021 cited by 260

  23. The metabolic potential of plastics as biotechnological carbon sources – Review and targets for the future

    Authors: , , , , , , , , , , - Metabolic Engineering 2021 cited by 151

  24. Fully automatized high‐throughput enzyme library screening using a robotic platform

    Authors: , , , , , , , , , - Biotechnology and Bioengineering 2016 cited by 102