Details of the Researcher

PHOTO

Shota Katsura
Section
Advanced Institute for Marine Ecosystem Change
Job title
Assistant Professor
Degree
  • D.Sc. (The University of Tokyo)

e-Rad No.
21003881

Research History 6

  • 2026/04 - Present
    東北大学 高等研究機構 変動海洋エコシステム高等研究所 助教

  • 2024/04 - Present
    東北大学 大学院理学研究科 助教

  • 2023/01 - 2024/03
    The University of Tokyo Atmosphere and Ocean Research Institute

  • 2021/10 - 2022/12
    University of California Scripps Institution of Oceanography Postdoctoral Scholar

  • 2019/04 - 2021/09
    University of California, San Diego Scripps Institution of Oceanography Japan Society for the Promotion of Science (JSPS) Oversea Research Fellow

  • 2017/04 - 2019/03
    The University of Tokyo Atmosphere and Ocean Research Institute

Show all Show first 5

Education 4

  • The University of Tokyo Graduate School of Science Department of Earth and Planetary Science

    2013/04 - 2016/12

  • The University of Tokyo Graduate School of Science Department of Earth and Planetary Science

    2011/04 - 2013/03

  • The University of Tokyo Faculty of Science Department of Earth and Planetary Physics

    2009/04 - 2011/03

  • The University of Tokyo

    2007/04 - 2009/03

Professional Memberships 1

  • 日本海洋学会

    - Present

Papers 14

  1. Spatiotemporal Variations in Upper‐Ocean Salinity Over the North Pacific in 2004–2021

    Yoshimi Kawai, Shota Katsura, Shigeki Hosoda

    Journal of Geophysical Research: Oceans 2024/04

    DOI: 10.1029/2023JC020309  

  2. Mechanism and impact of zonally contrasting seasonal variations in sea-surface salinity in the North Pacific and North Atlantic oceans

    Shoichiro Kido, Shota Katsura, Masami Nonaka, Youichi Tanimoto

    Progress in Oceanography 2023/12

    DOI: 10.1016/j.pocean.2023.103124  

    ISSN: 0079-6611

  3. Classification of Interannual Surface Layer Salinity Variability

    S. Katsura, J. Sprintall, S. Kido, Y. Tanimoto, M. Nonaka

    Geophysical Research Letters 2023/04/28

    DOI: 10.1029/2022GL102261  

  4. The Barrier Layer Effect on the Heat and Freshwater Balance from Moored Observations in the Eastern Pacific Fresh Pool

    Shota Katsura, Janet Sprintall, J. Thomas Farrar, Dongxiao Zhang, Meghan F. Cronin

    Journal of Physical Oceanography 2022/08

    DOI: 10.1175/jpo-d-21-0243.1  

    ISSN: 0022-3670 1520-0485

    More details Close

    <jats:title>Abstract</jats:title> <jats:p>Formation and evolution of barrier layers (BLs) and associated temperature inversions (TIs) were investigated using a 1-yr time series of oceanic and air–sea surface observations from three moorings deployed in the eastern Pacific fresh pool. BL thickness and TI amplitude showed a seasonality with maxima in boreal summer and autumn when BLs were persistently present. Mixed layer salinity (MLS) and mixed layer temperature (MLT) budgets were constructed to investigate the formation mechanism of BLs and TIs. The MLS budget showed that BLs were initially formed in response to horizontal advection of freshwater in boreal summer and then primarily maintained by precipitation. The MLT budget revealed that penetration of shortwave radiation through the mixed layer base is the dominant contributor to TI formation through subsurface warming. Geostrophic advection is a secondary contributor to TI formation through surface cooling. When the BL exists, the cooling effect from entrainment and the warming effect from detrainment are both significantly reduced. In addition, when the BL is associated with the presence of a TI, entrainment works to warm the mixed layer. The presence of BLs makes the shallower mixed layer more sensitive to surface heat and freshwater fluxes, acting to enhance the formation of TIs that increase the subsurface warming via shortwave penetration.</jats:p>

  5. Upper Ocean Stratification in the Eastern Pacific during the SPURS-2 Field Campaign

    Shota Katsura, Janet Sprintall, F M Bingham

    2020/11/16

    DOI: 10.1002/essoar.10504779.1  

  6. Barrier Layers Observed in a High-resolution Model in the Eastern Tropical Pacific

    Frederick M Bingham, Zhijin Li, Shota Katsura, Janet Sprintall

    2020/10/27

    DOI: 10.1002/essoar.10504558.1  

  7. Seasonality and Formation of Barrier Layers and Associated Temperature Inversions in the Eastern Tropical North Pacific

    Shota Katsura, Janet Sprintall

    Journal of Physical Oceanography 2020/03

    DOI: 10.1175/jpo-d-19-0194.1  

    ISSN: 0022-3670 1520-0485

    More details Close

    <jats:title>Abstract</jats:title><jats:p>Seasonality and formation of barrier layers (BLs) and associated temperature inversions (TIs) in the eastern tropical North Pacific Ocean were investigated using raw and gridded Argo profiling float data, satellite data, and various sea surface flux data. BLs were observed frequently in boreal summer and autumn along the sea surface salinity (SSS) front south of the eastern Pacific fresh pool. TIs were found within the gap between the western and eastern Pacific warm pools in autumn when BLs were thickest. A mixed layer salinity budget was constructed to determine the formation mechanism responsible for BLs with TIs. This budget revealed that Ekman advection works to both freshen and cool the eastern tropical North Pacific in autumn and contributes to the formation of the thickest BLs with the warmest TIs through the tilting of the SSS front. Precipitation is a secondary contributor to BL formation in autumn. The BLs are also prevalent during summer but are thinner, are without associated TIs, and are primarily formed through precipitation. The largest rainfall associated with the intertropical convergence zone mostly occurred north of the band of thickest BLs in both summer and autumn. The geostrophic advection of salinity did not coherently contribute to the formation of BLs or TIs. The idea that Ekman advection contributes most to the formation of the thickest BLs with warm TIs was further corroborated because the horizontal salinity gradient was the dominant contributor to the density gradient and so is favorable for BL and TI formation.</jats:p>

  8. Spatial Distribution and Seasonality of Halocline Structures in the Subarctic North Pacific

    Shota Katsura, Hiromichi Ueno, Humio Mitsudera, Shinya Kouketsu

    Journal of Physical Oceanography 2020/01

    DOI: 10.1175/jpo-d-19-0133.1  

    ISSN: 0022-3670 1520-0485

    More details Close

    <jats:title>Abstract</jats:title><jats:p>The spatial distribution and seasonality of halocline structures in the subarctic North Pacific (SNP) were investigated using Argo profiling float data and various surface flux data collected in 2003–17. The permanent halocline (PH) showed zonal patterns in the spatial distributions of its depth and intensity and tended to be shallow and strong in the eastern SNP but deep and weak in the west. Mean distributions of PH depth and intensity corresponded to the winter mixed layer depth and sea surface salinity, respectively, indicating that it forms in association with the development of the winter mixed layer. In the Western Subarctic Gyre and Alaskan Gyre, where a relatively strong PH formed, PH intensity and depth showed clear seasonal variations, and deepening of the mixed layer compressed the underlying PH during the cooling period, resulting in intensification and development of the PH in late winter. In both regions, upwelling of high-salinity water also contributed to PH intensification. The summer seasonal halocline (SH) showed distinct zonal differences in frequency and intensity, which were opposite to the PH distribution. While an SH formed in the western and central SNP and coastal regions, it was seldom present in the eastern area. This zonal contrast of SH corresponded to freshening of the mixed layer during the warming period, primarily reflecting freshwater flux. Geostrophic and Ekman advection play important roles in spatial differences in SH intensity and depth. SH development contributed to PH intensification in the following winter, by decreasing salinity above the PH through entrainment.</jats:p>

  9. Salinity frontogenesis/frontolysis in the northeastern subtropical Pacific region

    Shun Ohishi, Shota Katsura, Hidenori Aiki

    Climate Dynamics 2019/11

    DOI: 10.1007/s00382-019-04907-w  

    ISSN: 0930-7575 1432-0894

  10. Properties, formation, and dissipation of the North Pacific Eastern Subtropical Mode Water and its impact on interannual spiciness anomalies

    Shota Katsura

    Progress in Oceanography 2018/03

    DOI: 10.1016/j.pocean.2018.02.023  

    ISSN: 0079-6611

  11. Long-term change and variation of salinity in the western North Pacific subtropical gyre revealed by 50-year long observations along 137°E

    Eitarou Oka, Shota Katsura, Hiroyuki Inoue, Atsushi Kojima, Moeko Kitamoto, Toshiya Nakano, Toshio Suga

    Journal of Oceanography 2017/08

    DOI: 10.1007/s10872-017-0416-2  

    ISSN: 0916-8370 1573-868X

  12. Formation Mechanism of Barrier Layer in the Subtropical Pacific

    Shota Katsura, Eitarou Oka, Kanako Sato

    Journal of Physical Oceanography 2015/11

    DOI: 10.1175/jpo-d-15-0028.1  

    ISSN: 0022-3670 1520-0485

    More details Close

    <jats:title>Abstract</jats:title><jats:p>Seasonal and interannual variations of the barrier layer (BL) and its formation mechanism in the subtropical North and South Pacific were investigated by using raw and gridded Argo profiling float data and various surface flux data in 2003–12 and hydrographic section data from the World Ocean Circulation Experiment Hydrographic Programme. BLs detected by raw Argo profiles, which existed within the sea surface salinity (SSS) front located on the equator side of SSS maxima, were thickest and most frequent in winter and had a temporal scale shorter than 10 days, indicating their transient nature. Surface and subsurface processes for the BL formation suggested by previous studies were evaluated. Poleward Ekman advection of fresher water was dominant as the surface freshening process but cannot explain the observed seasonal variations of the BL. Subsurface equatorward intrusion of high-salinity tropical water was too deep to produce salinity stratification within isothermal layers. These results strongly suggest that BLs in the subtropical Pacific are formed mainly through tilting of the SSS front due to the poleward Ekman flow near the sea surface and the equatorward geostrophic flow in the subsurface. This idea is supported by the dominant contribution of the meridional SSS gradient to the meridional sea surface density gradient within the SSS front and the correspondence between the seasonal variations of the BL and isothermal layer depth. On an interannual time scale, the winter BL thickness in the North and South Pacific was related to the Pacific decadal oscillation and the El Niño–Southern Oscillation, respectively, through the intensity of trade winds controlling isothermal layer depth.</jats:p>

  13. Synoptic observation of Central Mode Water in its formation region in spring 2003

    Eitarou Oka, Kazuyuki Uehara, Toshiya Nakano, Toshio Suga, Daigo Yanagimoto, Shinya Kouketsu, Sachihiko Itoh, Shota Katsura, Lynne D. Talley

    Journal of Oceanography 2014/12

    DOI: 10.1007/s10872-014-0248-2  

    ISSN: 0916-8370 1573-868X

  14. Formation and Subduction of North Pacific Tropical Water and Their Interannual Variability

    Shota Katsura, Eitarou Oka, Bo Qiu, Niklas Schneider

    Journal of Physical Oceanography 2013/11/01

    DOI: 10.1175/jpo-d-13-031.1  

    ISSN: 0022-3670 1520-0485

    More details Close

    <jats:title>Abstract</jats:title> <jats:p>Formation and subduction of the North Pacific Tropical Water (NPTW), its interannual variability, and its associated mechanisms were investigated by using gridded Argo-profiling float data and various surface flux data in 2003–11. The NPTW has two formation sites in the center of the North Pacific subtropical gyre, corresponding to two regional sea surface salinity maxima. Mixed layer salinity variations in these two NPTW formation sites were found to be significantly different. While seasonal variation was prominent in the eastern formation site, interannual variation was dominant in the western site. The mixed layer salinity variation in the eastern site was controlled mainly by evaporation, precipitation, and entrainment of fresher water below the mixed layer and was closely related to the seasonal variation of the mixed layer depth. In the western site, the effect of entrainment is small due to a small vertical difference in salinity across the mixed layer base, and excess evaporation over precipitation that tended to be balanced by eddy diffusion, whose strength varied interannually in association with the Pacific decadal oscillation. After subduction, denser NPTW that formed in the eastern site dissipated quickly, while the lighter one that formed in the western site was advected westward as far as the Philippine Sea, transmitting the interannual variation of salinity away from its formation region.</jats:p>

Show all ︎Show first 5

Presentations 6

  1. CREST課題「海洋カーボン」の概要と父島での観測案の紹介

    桂 将太

    大島ワークショップ「黒潮域における海洋気象変動と水産資源」 2025/06/06

  2. BGC-Argo による亜熱帯モード水の生物地球化学に関する研究

    桂 将太

    東京大学大気海洋研・共同利用研究集会「海洋のカーボンとバイオスフィアの相互作用」 2025/02/27

  3. BGC Argoによる亜熱帯モード水の生物地球化学過程への影響

    桂 将太

    大気海洋相互作用に関する研究集会:Hot and cold issues 2024 2024/12/21

  4. BGC-Argoによる亜熱帯モード水の生物地球化学に関する研究

    桂 将太

    2024年度 名古屋⼤学宇宙地球環境研究所(ISEE)共同利⽤研究 ⼤気海洋相互作⽤に関する研究集会 2024/12/19

  5. 鉛直拡散を介した亜熱帯モード水の生物地球化学への影響

    桂 将太

    CREST(ライフ)「海洋カーボン」・さきがけ(ライフ)「海洋バイオスフィア」合同領域会議 CREST(ライフ)「海洋カーボン」第2回領域会議 2024/11/27

  6. BGCフロートを用いた北太平洋亜熱帯モード水の生物地球科学への役割に関する研究

    桂 将太

    東京大学大気海洋研究所の共同利用研究集会「北太平洋の変動と極端現象」 2024/08/07

Show all Show first 5

Research Projects 1

  1. How Ocean Structure Shapes Fish Communities: Spatiotemporal Dynamics Driven by Eddies and Meanders

    Offer Organization: Japan Society for the Promotion of Science

    System: Grants-in-Aid for Scientific Research

    Category: Grant-in-Aid for Scientific Research (A)

    Institution: Tohoku University

    2026/04/01 - 2030/03/31