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D-Index & Metrics

Discipline name D-Index World Ranking Current World Ranking National Ranking Current National Ranking Publications Citations
Chemistry 75 4357 3955 1379 1155 278 41210

Scot T. Martin publications per year

The chart shows the history of publications by Scot T. Martin between 1994 and 2026, highlighting the no. of papers published in each year and offering an overview of the publication velocity of this scholar. Scot T. Martin published across 33 years, from 1994 to 2026, averaging 27.9 papers a year. Output peaked at 545 publications in 2020. 6 of the 922 publications appeared in the last two years.

No. of publications
100 200 300 400 500
Bar chart. Horizontal axis: year, 1994 to 2026. Vertical axis: number of publications, 0 to 545. Peak 545 publications in 2020. 1994: 2 publications 1995: 3 publications 1996: 1 publication 1997: 1 publication 1998: 2 publications 1999: 2 publications 2000: 6 publications 2001: 12 publications 2002: 4 publications 2003: 8 publications 2004: 9 publications 2005: 12 publications 2006: 11 publications 2007: 18 publications 2008: 16 publications 2009: 16 publications 2010: 17 publications 2011: 15 publications 2012: 9 publications 2013: 11 publications 2014: 11 publications 2015: 30 publications 2016: 29 publications 2017: 17 publications 2018: 30 publications 2019: 17 publications 2020: 545 publications 2021: 23 publications 2022: 16 publications 2023: 14 publications 2024: 9 publications 2025: 5 publications 2026: 1 publication
1994 2026

922 publications in total across all disciplines

View publications per year as a table
Scot T. Martin: publications per year, 1994 to 2026
Year Publications
1994 2
1995 3
1996 1
1997 1
1998 2
1999 2
2000 6
2001 12
2002 4
2003 8
2004 9
2005 12
2006 11
2007 18
2008 16
2009 16
2010 17
2011 15
2012 9
2013 11
2014 11
2015 30
2016 29
2017 17
2018 30
2019 17
2020 545
2021 23
2022 16
2023 14
2024 9
2025 5
2026 1
Total 922
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Scot T. Martin publication distribution in Chemistry in 2026

The chart shows the distribution of publications by all Research.com ranked scientists in the field of Chemistry in 2026. The highlighted bar marks where Scot T. Martin sits on this spectrum.

No. of scientists
250 500 750 1,000 1,250
Bar chart with 63 bars. Horizontal axis: publications, 61–80 to 1,295+. Vertical axis: number of scientists, 0 to 1,350. Most scientists, 1,350, have 161–180 publications. The last bar groups every scientist with 1,295 publications or more. The highlighted bar, 261–280 publications, is where this scientist sits. 61–80 publications: 66 scientists 81–100 publications: 302 scientists 101–120 publications: 623 scientists 121–140 publications: 918 scientists 141–160 publications: 1,218 scientists 161–180 publications: 1,350 scientists 181–200 publications: 1,344 scientists 201–220 publications: 1,281 scientists 221–240 publications: 1,216 scientists 241–260 publications: 1,100 scientists 261–280 publications: 979 scientists 281–300 publications: 939 scientists 301–320 publications: 764 scientists 321–340 publications: 643 scientists 341–360 publications: 628 scientists 361–380 publications: 522 scientists 381–400 publications: 459 scientists 401–420 publications: 397 scientists 421–440 publications: 327 scientists 441–460 publications: 270 scientists 461–480 publications: 265 scientists 481–500 publications: 252 scientists 501–520 publications: 201 scientists 521–540 publications: 185 scientists 541–560 publications: 148 scientists 561–580 publications: 148 scientists 581–600 publications: 132 scientists 601–620 publications: 114 scientists 621–640 publications: 104 scientists 641–660 publications: 91 scientists 661–680 publications: 92 scientists 681–700 publications: 73 scientists 701–720 publications: 57 scientists 721–740 publications: 54 scientists 741–760 publications: 67 scientists 761–780 publications: 45 scientists 781–800 publications: 46 scientists 801–820 publications: 39 scientists 821–840 publications: 32 scientists 841–860 publications: 36 scientists 861–880 publications: 29 scientists 881–900 publications: 26 scientists 901–920 publications: 24 scientists 921–940 publications: 14 scientists 941–960 publications: 23 scientists 961–980 publications: 28 scientists 981–1,000 publications: 15 scientists 1,001–1,020 publications: 29 scientists 1,021–1,040 publications: 12 scientists 1,041–1,060 publications: 19 scientists 1,061–1,080 publications: 12 scientists 1,081–1,100 publications: 6 scientists 1,101–1,120 publications: 8 scientists 1,121–1,140 publications: 12 scientists 1,141–1,160 publications: 5 scientists 1,161–1,180 publications: 6 scientists 1,181–1,200 publications: 14 scientists 1,201–1,220 publications: 7 scientists 1,221–1,240 publications: 2 scientists 1,241–1,260 publications: 6 scientists 1,261–1,280 publications: 4 scientists 1,281–1,294 publications: 6 scientists 1,295+ publications: 100 scientists
61–80 publications 1,295+

This scientist: 278 publications — 58th percentile

58% of scientists in this discipline score the same or lower.

The last bar groups every scientist with 1,295 publications or more.

View publications distribution as a table
Number of Chemistry scientists by publication count, Research.com 2026 ranking edition. Based on 17,934 ranked scientists.
Publications Scientists This scientist
61–80 66
81–100 302
101–120 623
121–140 918
141–160 1,218
161–180 1,350
181–200 1,344
201–220 1,281
221–240 1,216
241–260 1,100
261–280 979 278
281–300 939
301–320 764
321–340 643
341–360 628
361–380 522
381–400 459
401–420 397
421–440 327
441–460 270
461–480 265
481–500 252
501–520 201
521–540 185
541–560 148
561–580 148
581–600 132
601–620 114
621–640 104
641–660 91
661–680 92
681–700 73
701–720 57
721–740 54
741–760 67
761–780 45
781–800 46
801–820 39
821–840 32
841–860 36
861–880 29
881–900 26
901–920 24
921–940 14
941–960 23
961–980 28
981–1,000 15
1,001–1,020 29
1,021–1,040 12
1,041–1,060 19
1,061–1,080 12
1,081–1,100 6
1,101–1,120 8
1,121–1,140 12
1,141–1,160 5
1,161–1,180 6
1,181–1,200 14
1,201–1,220 7
1,221–1,240 2
1,241–1,260 6
1,261–1,280 4
1,281–1,294 6
1,295+ 100
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Scot T. Martin D-index placement in Chemistry in 2026

The chart shows the D-index (discipline H-index) distribution of Chemistry scientists ranked by Research.com in 2026. The highlighted bar marks where Scot T. Martin sits on this spectrum.

No. of scientists
250 500 750 1,000
Bar chart with 61 bars. Horizontal axis: D-Index, 40–41 to 159+. Vertical axis: number of scientists, 0 to 1,051. Most scientists, 1,051, have 56–57 D-Index. The last bar groups every scientist with 159 D-Index or more. The highlighted bar, 74–75 D-Index, is where this scientist sits. 40–41 D-Index: 289 scientists 42–43 D-Index: 612 scientists 44–45 D-Index: 808 scientists 46–47 D-Index: 776 scientists 48–49 D-Index: 835 scientists 50–51 D-Index: 861 scientists 52–53 D-Index: 872 scientists 54–55 D-Index: 933 scientists 56–57 D-Index: 1,051 scientists 58–59 D-Index: 930 scientists 60–61 D-Index: 882 scientists 62–63 D-Index: 834 scientists 64–65 D-Index: 731 scientists 66–67 D-Index: 775 scientists 68–69 D-Index: 683 scientists 70–71 D-Index: 646 scientists 72–73 D-Index: 561 scientists 74–75 D-Index: 501 scientists 76–77 D-Index: 437 scientists 78–79 D-Index: 388 scientists 80–81 D-Index: 354 scientists 82–83 D-Index: 292 scientists 84–85 D-Index: 275 scientists 86–87 D-Index: 254 scientists 88–89 D-Index: 235 scientists 90–91 D-Index: 185 scientists 92–93 D-Index: 192 scientists 94–95 D-Index: 155 scientists 96–97 D-Index: 163 scientists 98–99 D-Index: 125 scientists 100–101 D-Index: 105 scientists 102–103 D-Index: 105 scientists 104–105 D-Index: 112 scientists 106–107 D-Index: 88 scientists 108–109 D-Index: 68 scientists 110–111 D-Index: 69 scientists 112–113 D-Index: 65 scientists 114–115 D-Index: 79 scientists 116–117 D-Index: 61 scientists 118–119 D-Index: 44 scientists 120–121 D-Index: 37 scientists 122–123 D-Index: 40 scientists 124–125 D-Index: 33 scientists 126–127 D-Index: 26 scientists 128–129 D-Index: 34 scientists 130–131 D-Index: 35 scientists 132–133 D-Index: 25 scientists 134–135 D-Index: 27 scientists 136–137 D-Index: 17 scientists 138–139 D-Index: 16 scientists 140–141 D-Index: 20 scientists 142–143 D-Index: 20 scientists 144–145 D-Index: 15 scientists 146–147 D-Index: 9 scientists 148–149 D-Index: 9 scientists 150–151 D-Index: 16 scientists 152–153 D-Index: 11 scientists 154–155 D-Index: 9 scientists 156–157 D-Index: 3 scientists 158 D-Index: 3 scientists 159+ D-Index: 98 scientists
40–41 D-Index 159+

This scientist: 75 D-Index — 76th percentile

76% of scientists in this discipline score the same or lower.

The last bar groups every scientist with 159 D-Index or more.

View D-Index distribution as a table
Number of Chemistry scientists by D-index, Research.com 2026 ranking edition. Based on 17,934 ranked scientists.
D-Index Scientists This scientist
40–41 289
42–43 612
44–45 808
46–47 776
48–49 835
50–51 861
52–53 872
54–55 933
56–57 1,051
58–59 930
60–61 882
62–63 834
64–65 731
66–67 775
68–69 683
70–71 646
72–73 561
74–75 501 75
76–77 437
78–79 388
80–81 354
82–83 292
84–85 275
86–87 254
88–89 235
90–91 185
92–93 192
94–95 155
96–97 163
98–99 125
100–101 105
102–103 105
104–105 112
106–107 88
108–109 68
110–111 69
112–113 65
114–115 79
116–117 61
118–119 44
120–121 37
122–123 40
124–125 33
126–127 26
128–129 34
130–131 35
132–133 25
134–135 27
136–137 17
138–139 16
140–141 20
142–143 20
144–145 15
146–147 9
148–149 9
150–151 16
152–153 11
154–155 9
156–157 3
158 3
159+ 98
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Overview

Scot T. Martin is affiliated with Harvard University in the United States. Their research spans multiple subfields related to environmental and atmospheric sciences, focusing on the chemistry and dynamics of airborne particles and gases.

Their recent publications include studies on atmospheric aerosols, secondary organic aerosols, and sulfate formation in polluted environments. Notable papers are:

  • Fast sulfate formation from oxidation of SO2 by NO2 and HONO observed in Beijing haze (2020, Nature Communications)
  • Aqueous production of secondary organic aerosol from fossil-fuel emissions in winter Beijing haze (2021, Proceedings of the National Academy of Sciences)
  • Enhanced aerosol particle growth sustained by high continental chlorine emission in India (2021, Nature Geoscience)
  • The Stove, Dome, and Umbrella Effects of Atmospheric Aerosol on the Development of the Planetary Boundary Layer in Hazy Regions (2020, Geophysical Research Letters)
  • A systematic re-evaluation of methods for quantification of bulk particle-phase organic nitrates using real-time aerosol mass spectrometry (2022, Atmospheric Measurement Techniques)

Frequent collaborators include Jianhuai Ye, Yongjing Ma, Jordi Vilà-Guerau De Arellano, Jinyuan Xin, and Rodrigo Augusto Ferreira De Souza. This indicates ongoing collaborations in topics covering atmospheric chemistry and related fields.

The scientist commonly publishes in outlets such as Harvard Dataverse, ACS Earth and Space Chemistry, Environmental Science & Technology, Atmospheric Chemistry and Physics, and Wageningen University and Researchcenter Publications.

Their work covers specific subfields including:

  • Environmental Engineering
  • Atmospheric Science
  • Global and Planetary Change
  • Health, Toxicology and Mutagenesis
  • Organic Chemistry

Main topics of research include:

  • Air Quality Monitoring and Forecasting
  • Atmospheric chemistry and aerosols
  • Air Quality and Health Impacts
  • Atmospheric aerosols and clouds
  • Atmospheric and Environmental Gas Dynamics
  • Chemistry and Stereochemistry Studies
  • Atmospheric Ozone and Climate

In addition to journal articles, Scot T. Martin has contributed to academic books, with published work by the American Chemical Society, including the 2021 book Aerosols in Atmospheric Chemistry.

Best Publications

  • Environmental Applications of Semiconductor Photocatalysis

    Michael R. Hoffmann;Scot T. Martin;Wonyong. Choi;Detlef W. Bahnemann

  • Phase Transitions of Aqueous Atmospheric Particles.

    Scot T. Martin

  • Amorphous and crystalline aerosol particles interacting with water vapor: conceptual framework and experimental evidence for restructuring, phase transitions and kinetic limitations

    E. Mikhailov;E. Mikhailov;S. Vlasenko;S. T. Martin;T. Koop

  • A simplified description of the evolution of organic aerosol composition in the atmosphere

    C. L. Heald;J. H. Kroll;J. L. Jimenez;K. S. Docherty

  • Photochemical Mechanism of Size-Quantized Vanadium-Doped TiO2 Particles

    Scot T. Martin;Colin L. Morrison;Michael R. Hoffmann

  • The viscosity of atmospherically relevant organic particles

    Jonathan P. Reid;Allan K. Bertram;David O. Topping;Alexander Laskin

  • Predicting the relative humidities of liquid-liquid phase separation, efflorescence, and deliquescence of mixed particles of ammonium sulfate, organic material, and water using the organic-to-sulfate mass ratio of the particle and the oxygen-to-carbon elemental ratio of the organic component

    A. K. Bertram;S. T. Martin;S. J. Hanna;M. L. Smith

  • Time-resolved microwave conductivity. Part 1.—TiO2 photoreactivity and size quantization

    Scot T. Martin;Hartmut Herrmann;Wonyong Choi;Michael R. Hoffmann

  • Healing of canine articular cartilage defects treated with microfracture, a type‐II collagen matrix, or cultured autologous chondrocytes

    Howard A. Breinan;Scott D. Martin;Hu-Ping Hsu;Myron Spector

  • Fast sulfate formation from oxidation of SO 2 by NO 2 and HONO observed in Beijing haze

    Junfeng Wang;Junfeng Wang;Jingyi Li;Jianhuai Ye;Jian Zhao

  • Examining the effects of anthropogenic emissions on isoprene-derived secondary organic aerosol formation during the 2013 Southern Oxidant and Aerosol Study (SOAS) at the Look Rock, Tennessee ground site

    S. H. Budisulistiorini;S. H. Budisulistiorini;X. Li;S. T. Bairai;S. T. Bairai;J. Renfro

  • Using elemental ratios to predict the density of organic material composed of carbon, hydrogen, and oxygen.

    Mikinori Kuwata;Soeren S R Zorn;Scot T Martin

  • Loading-dependent elemental composition of α-pinene SOA particles

    John E. Shilling;John E. Shilling;Qi Chen;Stephanie M. King;Thomas Rosenoern

  • Images reveal that atmospheric particles can undergo liquid-liquid phase separations

    Yuan You;Lindsay Renbaum-Wolff;Marc Carreras-Sospedra;Sarah J. Hanna

  • Surface complexation and dissolution of hematite by C 1 -C 6 dicarboxylic acids at pH = 5.0

    Owen W Duckworth;Scot T Martin

  • Biogenic Potassium Salt Particles as Seeds for Secondary Organic Aerosol in the Amazon

    Christopher Pöhlker;Kenia T. Wiedemann;Kenia T. Wiedemann;Kenia T. Wiedemann;Bärbel Sinha;Manabu Shiraiwa

  • Aqueous production of secondary organic aerosol from fossil-fuel emissions in winter Beijing haze.

    Junfeng Wang;Jianhuai Ye;Qi Zhang;Jian Zhao

  • Time-resolved microwave conductivity. Part 2.—Quantum-sized TiO2 and the effect of adsorbates and light intensity on charge-carrier dynamics

    Scot T. Martin;Hartmut Herrmann;Michael R. Hoffmann

  • Characterization of a real-time tracer for isoprene epoxydiols-derived secondary organic aerosol (IEPOX-SOA) from aerosol mass spectrometer measurements

    W. W. Hu;P. Campuzano-Jost;B. B. Palm;D. A. Day

  • Phase of atmospheric secondary organic material affects its reactivity

    Mikinori Kuwata;Scot T. Martin

  • Liquid–liquid phase separation in atmospherically relevant particles consisting of organic species and inorganic salts

    Yuan You;Mackenzie L. Smith;Mijung Song;Scot T. Martin

  • Effects of the physical state of tropospheric ammonium-sulfate-nitrate particles on global aerosol direct radiative forcing

    S. T. Martin;H.-M. Hung;R. J. Park;D. J. Jacob

  • Products and mechanisms of the reaction of oleic acid with ozone and nitrate radical.

    Hui-Ming Hung;Yasmine Katrib;Scot T. Martin

  • Products and Mechanisms of Ozone Reactions with Oleic Acid for Aerosol Particles Having Core−Shell Morphologies

    Yasmine Katrib;Scot T. Martin;Hui-Ming Hung;Yinon Rudich

  • Submicrometer Particles Are in the Liquid State during Heavy Haze Episodes in the Urban Atmosphere of Beijing, China

    Yuechen Liu;Zhijun Wu;Yu Wang;Yao Xiao

  • The Effectiveness of the Controlled Release of Gentamicin from Polyelectrolyte Multilayers in the Treatment of Staphylococcus aureus Infection in a Rabbit Bone Model

    Joshua Seth Moskowitz;Michael R. Blaisse;Raymond E. Samuel;Hu-Ping Hsu;Hu-Ping Hsu

  • Particle-phase chemistry of secondary organic material: modeled compared to measured O:C and H:C elemental ratios provide constraints.

    Qi Chen;Yingjun Liu;Neil M. Donahue;John E. Shilling

  • Surface Structures of 4-Chlorocatechol Adsorbed on Titanium Dioxide

    Scot T. Martin;Janet M. Kesselman;David S. Park;Nathan S. Lewis

  • Transport of North African dust from the Bodélé depression to the Amazon Basin: a case study

    Y. Ben-Ami;I. Koren;Y. Rudich;P. Artaxo

  • Resolving the mechanisms of hygroscopic growth and cloud condensation nuclei activity for organic particulate matter

    Pengfei Liu;Mijung Song;Tianning Zhao;Sachin S. Gunthe;Sachin S. Gunthe

Frequent Co-Authors

Paulo Artaxo
Paulo Artaxo Universidade de São Paulo
Meinrat O. Andreae
Meinrat O. Andreae Max Planck Institute for Chemistry
Allan K. Bertram
Allan K. Bertram University of British Columbia
Brett B. Palm
Brett B. Palm University of Washington
Jeffrey N. Katz
Jeffrey N. Katz Brigham and Women's Hospital
Alex Guenther
Alex Guenther University of California, Irvine
Joel Brito
Joel Brito IMT Lille Douai
Elena Losina
Elena Losina Brigham and Women's Hospital
Franz M. Geiger
Franz M. Geiger Northwestern University
Jose L. Jimenez
Jose L. Jimenez University of Colorado Boulder

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