Profile Information
- Affiliation
- Assistant Professor, Institute of Space and Astronautical Science, Japan Aerospace Exploration AgencyAssistant Professor, Graduate Institute for Advanced Studies, Space and Astronautical Science Program, The Graduate University for Advanced StudiesGuest Associate Professor, Graduate School of System Design Management, Keio University(Concurrent)Visiting Associate Professor, Institute of Advanced BiosciencesAffiliate Associate Professor, Graduate School of Science and Engineering, Hosei UniversityAdjunct Lecturer, School of Engineering Department of Space Systems Engineering, Kyushu Institute of TechnologyResearch Affiliate, Media Lab, Space Exploration Initiative, Massachusetts Institute of Technology
- Degree
- Ph.D. in Space Sciences(Oct, 1995, University of Kent at Canterbury, United Kingdom)
- Researcher number
- 00321571
- J-GLOBAL ID
- 200901039611171139
- researchmap Member ID
- 1000292032
- External link
Prof. Hajime Yano is a space scientist, professor, and project manager of JAXA/ISAS, Japan, who specializes in solar system exploration science and astrobiology, with an emphasis on sample return missions and space experiments.
As an expert in cosmic dust studies and impact physics for over a quarter of the century, his expertise extends to observational, experimental, analytical, and theoretical works of cosmic dust and space debris, as well as planetary protection and planetary defense. In particular, he has specialized in in-situ detection and collection of cosmic dust and ultimately sample return missions from their parent bodies such as Stardust, Hayabusa, and Hayabusa-2.
Hajime has contributed more than 250 refereed papers as a researcher, a co-investigator, or the principal investigator of about 20 past or ongoing space projects from Japan, Europe, and the United States including LDEF, EuReCa, HST, SFU, Nozomi, Stardust, Hayabusa, Leonid-MAC, SSSAT, IKAROS, Tanpopo, BepiColombo, Hayabusa-2, Tanpopo-2, SpaceSkin, EQUULEUS, DESTINY+, Comet Interceptor, and Gateway. Through these projects, he has accomplished a number of pioneering works that led to major scientific discoveries and “game-changing” movements in solar system exploration. Since 2007, Hajime holds and maintains a Project Management Professional (PMP) certification and served as Tanpopo-2 project manager.
In the space shuttle era, Hajime established post-flight analysis procedures of micrometeoroid and orbital debris impact signatures on retrieved spacecraft surfaces. Microscopic analyses of several hundred impacts per spacecraft such as LDEF, EuReCa, and HST revealed their origins and formed a fundamental database for dust environment modeling in near-Earth space. The SFU post-flight analysis formed Japan’s first in-situ measurement database of meteoroids and debris.
In 1998-2002, Hajime and his team became the world’s first to use high-definition video imagery for astronomical research and their airborne observation onboard the Leonid MAC mission, which yielded both the faintest influx and organic and volatile spectroscopy of the Leonid meteor storm. The Leonid MAC mission resulted in a quantum leap of meteor science as a “human mission to comets without going to space, by using the atmosphere as a large dust detector”.
Hajime developed and operated a number of new instruments for cosmic dust detection and collection. The detectors include the Nozomi-MDC and DESTINY+ DDA impact-induced plasma detector/analyzer, the BepiColombo-MDM and Gateway ERSA/LVDM acoustic sensors, and the ALADDIN PVDF detectors onboard SSSAT and IKAROS as well as the CLOTH PVDF integrated within MLI thermal blankets onboard EQUULEUS. All of them are involved in hypervelocity impact calibration experiments and simulations so Hajime has developed stable shotgun techniques for microparticle impacts with two-stage light gas guns at the University of Kent in the U.K., NASA Johnson Space Center in the U.S.A., and ISAS in Japan. ALADDIN onboard the world’s first interplanetary solar sail IKAROS deployed a 0.54 m2 detection area of cosmic dust impacts; it is the largest dedicated dust detector in the history of solar system exploration and has yielded the finest structure of dust distribution ever between the Earth and Venus. Hajime has also collaborated with MIT ISN to upgrade the LIPIT dust accelerator for impact calibrations of space instrumentation. He is now the science lead of the dust impact bumper for JAXA's B1 spacecraft in the Comet Interceptor mission.
Intact capture of meteoroids was attempted by foil stuck or aerogel modules used on LDEF, EuReCa, Stardust, Tanpopo, and Tanpopo-2. Hajime was also involved in the development of an ice-melting dust collection device for Japan’s first Antarctic micrometeorite expedition in 1999. He is now advancing these experiences for future mission concepts like a sample return from Saturn's ring dust and Enceladus’ icy plume as well as impact ejecta from interstellar objects.
Also noted is Hayabusa-1&2’s asteroid surface sampling device that resulted in the world’s first asteroid sample return from Itokawa in 2010 and the second of its kind from Ryugu in 2020. This impact sampling technique that Hajime and his team developed is a robust system suitable for almost any unknown surface conditions of an airless solid body. Upon the sampling attempt on Itokawa by the Hayabusa-1, Hajime and his colleagues discovered evidence of granular migration on such a small body, which revolutionized ideas of their surface activities and created a new research field of “microgravity geology”. As future sample return missions are more inclined to organic and volatile-rich small bodies, he is also contributing in the fields of astrobiology, planetary protection, and microgravity experiments.
As an educator, Hajime has given a number of classes and lectures for planetary science, astronautical engineering, and project management in universities and institutes worldwide. He has supervised dozens of Masters and Ph.D. students as well as domestic interns and international students in the field of solar system science and exploration at ISAS.
In the international academic community, Hajime has served leading positions in organizing numerous scientific meetings in the collaboration with COSPAR, IAA, IAU, ISTS, and space agencies. He was the chair of the inaugural meeting of the International Primitive Body Exploration Working Group (IPEWG) in 2008 and the first Asian vice chair of the COSPAR Planetary Protection Panel (PPP) in 2014-2018. At present, he is the IAA Academician as well as the secretary of the IAA Space Physical Science Commission. Since 2022, he has been serving as the Chair of the COSPAR Scientific Commission-B on "Space Studies of the Earth-Moon System, Planets, and Small Bodies of the Solar System".
The main belt carbonaceous (B/Cb) asteroid 1995 WF2 is named 8906 Yano.
Research Interests
29Research Areas
7Major Research History
27Education
8-
Apr, 1983 - Mar, 1987
Committee Memberships
32-
Dec, 2025 - Present
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Apr, 2025 - Present
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Jan, 2025 - Present
Awards
48Papers
315-
npj Space Exploration, 2(1), Jan 21, 2026 Peer-reviewedLast authorDetecting and cataloguing spacecraft hardware on the lunar surface remains challenging even after six decades of exploration. We present a lightweight computer vision system, YOLO-ETA (You-Only-Look-Once – Extraterrestrial Artefact), adapted from TinyYOLOv2 for identifying anthropogenic objects in high-resolution Lunar Reconnaissance Orbiter Camera (LROC) imagery. Trained on Apollo landing-site data, YOLO-ETA achieved balanced precision–recall (F1 ≈ 0.60) and an 80% mean confidence score for lander detections in previously unseen images and correctly localised the Luna 16 spacecraft. Applying the model to a 5 × 5 km region surrounding the historically uncertain Luna 9 landing area yielded several high-confidence detections of artificial objects near 7.03° N, –64.33° E. Topographic analysis indicates that the candidate site’s horizon geometry is potentially consistent with Luna 9 surface panoramas. These findings identify promising locations for follow-up imaging and demonstrate that compact, edge-deployable machine-learning models can support future orbital surveys of lunar artefacts and surface assets.
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Life Sciences in Space Research, Dec 18, 2025 Peer-reviewedLast authorIn response to the growing importance of space exploration, the objectives of the COSPAR Panel on Exploration (PEX) are to provide high quality, independent science input to support the development of a global space exploration program, to promote space sciences as a key element of this program, to contribute to maximize its scientific return via enhanced international cooperation, and to take action to safeguard the scientific assets of solar system bodies. This paper summarizes the presentations of the two panel sessions at the COSPAR assembly 2024 and identifies the most intensely discussed recent topics of interest or concern for space exploration. These topics include environment stewardship of celestial bodies, space debris, resource utilization, the Moon, Mars, and other celestial bodies that we want to explore with planetary protection measures, preservation of dark and quiet skies, potential atmospheric pollution, space as an independent goal of sustainable development, human spaceflight, agile and affordable space programs, and the early preparation of a new edition of the COSPAR exploration roadmap.
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Nature Communications, 16(6466), Jul 23, 2025 Peer-reviewedChondrules are a characteristic feature of primitive Solar System materials and are common in all primitive meteorites except the CI-chondrites. They are thought to form owing to melting of solid dust aggregates by energetic processing within the solar nebula and thus record fundamental processes within protoplanetary disks. We report the discovery of abundant altered microchondrules (>350 ppm) with modal sizes of 6–8 µm within sample A0180 from C-type asteroid Ryugu. These microchondrules have similar log-normal size and shape distributions to normal-sized chondrules, implying evolution by similar size-sorting. We suggest here formation of microchondrules in an outer Solar System chondrule factory, located in the Jovian pressure-bump, followed by turbulent diffusion and concentration relative to chondrules by intense turbulence. Meridional flows could have also separated microchondrules from chondrules and deliver them sunwards of the pressure bump via Lindblad torque flows. Contrary to conventional wisdom, we thus propose that the concentration of fine-grained, unprocessed grains could mean the most primitive asteroids did not have to form at the largest heliocentric distances.
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SPring-8/SACLA Scientific Research Report, 13(3) 106-121, Jun 30, 2025 Peer-reviewedInvited
Misc.
494-
NIRS-M (National Inst. of Radiological Sciences), (175) 168-169, 2004
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Meeting Abstracts of the Physical Society of Japan, 58 133-133, 2003
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Abstracts for Annual Meeting of the Mineralogical Society of Japan, 2003 139-139, 2003X線CT法はX線の物質による吸収を利用して、物体の内部構造を非破壊で得る方法である。また、連続的なCT像の積み重ねにより、3次元構造が得られる。放射光は指向性の強い平行光であり、また容易に単色化することができる。これを利用することにより、高空間分解能で3次元CT像が得られるとともに、CT値(物質による線吸収係数(LAC)に対応するCT像の輝度)を定量的に扱える。我々の研究グループは、西播磨にある第三世代大型放射光施設であるSPring-8において開発された放射光を用いたマイクロトモグラフ装置(SPμ CT)[1]を、微隕石に応用している。微隕石は、地球に落下する地球外物質のうちでサイズ1mm以下のものをいい、隕石とは異なった特徴と起源をもつものが存在する。<BR> 南極の氷床中から取り出した12個の微隕石試料(100-300μm)を、SPring-8のBL20XUにおいて撮影し、その体積と空隙率を求めた。得られた3次元CT像の画素サイズは0.5x0.5x0.5μmであり、実質的な空間分解能は約1.5μmである。このうちの9個の試料についてはマイクロ天秤(精度:0.1μg)により質量を求め(0.8-5.7μg)、空隙を含むみかけの密度および真の密度を従来よりも高精度で得ることができた(1.7-3.3g/cm<SUP>3</SUP>)[2]。含水珪酸塩鉱物を含む2個の非溶融微隕石についての真の密度は1.9±0.2および2.0±0.0g/cm<SUP>3</SUP>であり、空間分解能以下のサブμmの空隙の存在が強く示唆される。一方、FeのK吸収端を利用した差分法による、Feの3次元分布像を得ることにも初めて成功し、Fe-richなリムの3次元分布とその成因が議論できるようになった[3]。また、3次元CT像からは、ラピッドプロトタイピング法を用いて、正確な3次元拡大模型(石膏製)を作ることができる。これにより、複雑な外形を容易に理解し、3次元外形の解析が容易になった。<BR> 上記のCT装置(SPμ CT)では、試料を透過したX線を蛍光板で可視光に変換し、これを光学レンズで拡大してCCDカメラで撮影するという方法で、CT像の空間分解能を上げているが、可視光の波長(0.4-0.7μm)が限度である。一方、フレネルゾーンプレートを用いてX線を拡大することにより、より高空間分解能のCT像が得られる。SPring-8において開発中のこの結像型CT装置[4]では、現在のところ数100 nmの分解能が確認されており、将来的には100-10 nmの分解能が可能である。惑星間塵やStrardusにより2006年サンプルリターン予定の彗星塵などへの応用の将来性についても議論する。<BR> [1] Uesugi K. et al. (2001) Nucl. Instr. Methods Phys. Res., A, 467-468, 853-856. [2] Okazawa T. et al. (2002) Antarctic Meteorites, XXVII, 137-139. [3] Tsuchiyama A. et al. (2001) Meteoritics & Planet. Sci., 36, A210. [4] Takeuchi A. et al. (2002) Rev. Sci. Instr., 73, 4246-4249.
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Abstracts for fall meeting of the Japanese Society for Planetary Science, 2003 88-88, 2003We have succeeded in detecting a dust trail along the orbit of the short-period comet 81P/Wild2 , the target of the Stardust mission, which will fly by 81P/Wild2 in 2004 January. Based on our observation, it is likely that the trail is composed of dust particles with a diameter of about 1mm. During the flyby phase of the Stardust spacecraft, the spacecraft will come across the impacts of such large dust particles along the comet's orbit. In this study , we examine the impact fluence and impact velocity of the dust particles onto the Stardust spacecraft.
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宇宙科学シンポジウム 平成14年度 第3回, 3 423-426, 2003
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宇宙科学シンポジウム 平成14年度 第3回, 3 109-112, 2003
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宇宙科学シンポジウム 平成14年度 第3回, 341-344, 2003
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Abstracts for fall meeting of the Japanese Society for Planetary Science, 2003 73-73, 2003We have examined the glass inclusions in Dhofar007 cumulate eucrite and Johnstown, Tatahouine diogenites. So the glass inclusions are revealed to be high silica and incompatible elements poor from the measurement of major and trace elements abundances by using EPMA and LAM-ICP-MS. These results may imply that the original melts for the glass inclusions were formed by incongruent melting of orthopyroxenes. And we performed a shock experiment on orthopyroxene. The sample material was a high-quality single crystal enstatite from Tanzania.
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Abstracts for fall meeting of the Japanese Society for Planetary Science, 2003 28-28, 2003衝突クレーター形成過程において、サイズ等を支配するパラメーターが、標的が岩石等の場合は物質強度、標的がレゴリス等の場合は表面重力であることは様々な研究により明らかにされている。しかし、標的がレゴリスでかつ表面重力が微小な場合に、どのようなパラメターにより支配されるかは明らかでない。このような領域でのクレーター形成過程を定量的に明らかにすることは、小惑星の表面進化過程を研究するうえで重要である。今回我々は、落下カプセルを用いた微小重力環境下でのクレーター形成実験を行ったので、その結果を発表する。
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Abstracts for fall meeting of the Japanese Society for Planetary Science, 2003 86-86, 2003Building up the New Minor Body Exploration Missions in the Post-Hayabusa Era
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Abstracts for fall meeting of the Japanese Society for Planetary Science, 2003 52-52, 20032002年しし座流星ダストの金属元素アバンダンスはソーラーアバンダンスであることがわかった。今回は2001年のしし座流星群について解析をすすめた。さらには流星ダスト中における揮発性物質の存在についても検証する。
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Meeting Abstracts of the Physical Society of Japan, 58 120-120, 2003
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2001 IEEE NUCLEAR SCIENCE SYMPOSIUM, CONFERENCE RECORDS, VOLS 1-4, 1 422-426, 2002
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システム計画研究会 われわれは宇宙開発で何をやるのか(その2) (第20回) 平成14年, 12-25, 2002
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システム計画研究会 われわれは宇宙開発で何をやるのか(その2) (第20回) 平成14年, 63-66, 2002
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宇宙科学技術連合講演会講演集, 46th(Pt.3) 999-1004, 2002
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Meeting Abstracts of the Physical Society of Japan, 57 138-138, 2002
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EARTH PLANETS AND SPACE, 53(11) 1027-1027, 2001
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Abstracts Fall Meeting of the Japanese Society for Planetary Sciences, 2001 29-29, 2001Minor body mission plans in the post-MUSES-C era have been discussed since last year and the MEF has selected two finalists and integrated them with other candidates in terms of common scientific objectives and observational methods. These are the multiple rendezvous and sample return missions to spectral known near-Earth objects and the multiple fly-bys and sample returns to the main belt asteroid family members. We will discuss their preliminary mission plans, scientific objectives and expected results.
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Abstracts Fall Meeting of the Japanese Society for Planetary Sciences, 2001 20-20, 2001
Books and Other Publications
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新興出版社啓林館, Mar, 2025 (ISBN: 9784402053505) Refereed
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Presentations
590Teaching Experience
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Apr, 2020 - Present宇宙工学 (法政大学理工学部)
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Apr, 2019 - Present宇宙システム工学 (九州工業大学工学部宇宙システム工学科)
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Sep, 2010 - Present
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Sep, 2017 - Mar, 2020航空宇宙学特別講義II (東京大学大学院工学研究科航空宇宙工学専攻)
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Jan, 2010 - Nov, 2010宇宙システム理工学 (慶應義塾大学大学院理工学研究科)
Professional Memberships
10-
Sep, 2024 - Present
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2018 - Present
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2013 - Present
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2011 - Present
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2000 - Present
Works
28Research Projects
42-
日本学術振興会 科学研究費助成事業 挑戦的研究(萌芽), 日本学術振興会, Jul, 2025 - Mar, 2027
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公募型小型Eco&Fastクラス・プロジェクト公募, 宇宙航空研究開発機構・宇宙科学研究所, Apr, 2025 - Mar, 2027
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大阪大学レーザー科学研究所・共同利用研究B-1, 大阪大学レーザー科学研究所, Oct, 2020 - Mar, 2027
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ISAS公募型2023年度小規模計画, 宇宙航空研究開発機構・宇宙科学研究所, Oct, 2024 - Mar, 2026
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自然科学研究機構アストロバイオロジーセンター・サテライト研究, 自然科学研究機構アストロバイオロジーセンター, Apr, 2022 - Mar, 2025
Industrial Property Rights
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US20190193874 - Multi-layer insulation of spacecraft structure for cosmic dust impact damage monitoring. Publication Number 20190193874.
Academic Activities
23-
Planning, Management, etc., Panel moderator, Session chair, etc., Supervision (editorial), Review, evaluationOPENS-0 Pre-Project Preparation Team, JAXA/ISAS (JAXA/ISAS (Online)), Apr, 2025 - PresentScopes: Aiming to be launched in the late 2020s, the OPENS-0 is an engineering demonstration mission of key enabling technologies for a 100-kg class spacecraft to independently explore the outer planet region, e.g., Saturn's ring flyby. Inevitably, the spacecraft is limited in its resources and operational capabilities compared to legacy spacecraft. Thus, the OPENS-0 is designed to maximize its scientific output by employing "multi-purpose" instruments such as optical navigation cameras for observing zodiacal light, main belt asteroid morphology, and Saturn's ring structure. It is also planned to use the ultra-stable oscillator and deep space transponder for radio occultation of the solar flare, the planetary atmospheres, and Saturn's ring, as well as the PVDF-layered MLI for micrometeoroid flux at 1-10 AU heliocentric distance and dust structure in the vicinity of Saturn's ring. This workshop is aimed at the following three scopes. (1) The workshop will present the mission concept and its potential scientific opportunities of the OPENS-0 to the international science community at the earliest stage of the mission formulation. (2) The solicited talks will review outcomes from the cruising science investigations conducted by past and present deep space missions to provide lessons learned and remaining scientific challenges for the OPENS-0 mission. (3) The OPENS-0 team will identify potential candidates for the future OPENS-0 international science team among the participants who express their interest in joining the mission.
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Planning, Management, etc., Panel moderator, Session chair, etc., Peer reviewInternational Academy of Astronautics (IAA), Apr, 2017 - Present
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Planning, Management, etc., Panel moderator, Session chair, etc., Supervision (editorial), Review, evaluationMar 2, 2026 - Mar 4, 2026
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Planning, Management, etc., Panel moderator, Session chair, etc., Supervision (editorial), Review, evaluationCommittee of Space Research(COSPAR) (Nicosia, Cyprus), Nov 3, 2025 - Nov 7, 2025Building on the success of the B3.2 Scientific Event at the 2024 COSPAR Scientific Assembly in Busan, this Scientific Event brings together COSPAR scientists and new space participants to advance new research opportunities on the Moon, in Earth orbit, and across deep space. The year 2025 has seen the first fully successful commercial landing on the Moon, with more possibly following before this symposium. New science and data opportunities range from lunar subsurface thermal properties, electrodynamic dust interactions, and studies of the interaction of solar wind and Earth's magnetic field, to experiments in resource beneficiation and new electrolytic processes on the lunar surface. Near-Earth objects are now targets of the off-Earth mining industry and planetary defense for both governmental and private sectors. Deep space exploration to Mars and beyond also involves emerging space agencies, and CubeSats and small sats are rapidly being utilized for their missions. New space startups are also introducing new data gathering capabilities from Earth orbit, including a fusion of new sensor and communication technology for monitoring, analysing, and mitigating natural and human hazards on Earth. This event will highlight the technology gaps that current space science can address by promoting collaborations and partnerships among new space entrepreneurs, the COSPAR Associates community, established space agencies, and legacy industry players.
Social Activities
3Media Coverage
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Interesting Engineering, Interesting Engineering, Space, Feb 13, 2026 InternetThe algorithm scanned a 5×5-kilometer area in the Oceanus Procellarum region, identifying several spots exhibiting “artificial soil disturbances.”
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Euro Weekly News, Euro Weekly News, World News, Feb 12, 2026 InternetBritish-led researchers believe they may have identified the long-lost landing site of Luna 9, the Soviet spacecraft that became the first human-made object to achieve a soft landing on the Moon in 1966. Using artificial intelligence to analyse high-resolution lunar imagery, the team has reported several “high-confidence detections of artificial objects” in a specific region of the Moon’s surface.
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NDTV, NDTV, Science, Feb 12, 2026 InternetWhile the findings are promising, they are not yet definitive proof of Luna 9's location.
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GIzmode, Gizmode, Space & Spaceflight, Feb 12, 2026 InternetLuna 9 had a bouncy touchdown on the lunar surface in 1966, becoming the first spacecraft to land on the Moon.
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The Brief, TheBrief.org, Space, Feb 11, 2026 InternetResearchers report the detection of "artificial objects" on the Moon that could help locate a long-lost Soviet spacecraft.
Other
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Apr, 2020 - Presenthttps://www.linkedin.com/in/hajime-yano-ph-d-pmp-b0364915/
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Apr, 2010 - Presenthttps://www.researchgate.net/profile/Hajime-Yano-2 (Research Interest Score, Citations, h-index since 1995)
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Apr, 2010 - Presenthttps://scholar.google.co.jp/citations?user=J6M3rh0AAAAJ&hl=ja (h-Index, i10-index since 1999)
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Jul, 2007 - PresentCertified by the Project Management Institute (PMI)
教育内容やその他の工夫
1-
Date(From)2012/04/01SubjcetLABAM: Laboratory for Astrobiology and AstromaterialSummary研究室理念: 宇宙塵をキーワードとする宇宙探査・実験によって可能となるアストロバイオロジーと地球外物質研究を融合して、惑星系、地球型惑星、生命の起源と進化を実証的に解明することを目指すとともに、近隣の学際研究への応用・連携を通じて人類社会の持続的なフロンティア拡大に貢献する。
その他教育活動上特記すべき事項
10-
Date(From)2023/04Subjcet総合研究大学院大学・先端学術院・宇宙科学コース(併任)Summary助教:矢野創
(継続中) -
Date(From)2019/04Subjcet九州工業大学 工学部宇宙システム工学科 (兼任)Summary非常勤講師:矢野創
(継続中) -
Date(From)2019/04Subjcet慶応義塾大学 先端生命科学研究所(兼任)Summary訪問准教授: 矢野創
(継続中) -
Date(From)2017/04Date(To)2020/03Subjcet東京大学大学院 工学系研究科航空宇宙工学専攻(兼任)Summary非常勤講師:矢野創
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Date(From)2016/04Subjcet法政大学大学院 理工学研究科(併任)Summary連携准教授: 矢野創
JAXA-法政大学連携大学院協定に基づく。(継続中)
2016-2023年は客員准教授。 -
Date(From)2012/04SubjcetJAXA宇宙科学研究所・学際科学研究系・宇宙生命物質科学研究室(本務)Summary助教:矢野創
(継続中) -
Date(From)2010/09Subjcet慶応義塾大学大学院 システムデザインマネジメント研究科(兼任)Summary特別招聘准教授: 矢野創
(継続中) -
Date(From)2003/10Date(To)2023/03Subjcet総合研究大学院大学・物理科学研究科・宇宙科学専攻(併任)Summary助教: 矢野創
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Date(From)2003/10Date(To)2012/03SubjcetJAXA宇宙科学研究所・太陽系科学研究系(本務)Summary助教:矢野創
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Date(From)1999/05Date(To)2003/09Subjcet文部科学省宇宙科学研究所・惑星科学研究系(本務)Summary教授: 藤原顕
助手: 安部正真、矢野創
● 指導学生等の数
8-
Fiscal Year2025年度(FY2025)Doctoral program1Master’s program6Students under Cooperative Graduate School System6Students under Skills Acquisition System2JSPS Research Fellowship (Young Scientists)1
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Fiscal Year2024年度(FY2024)Doctoral program1Master’s program5Students under Cooperative Graduate School System5Students under Skills Acquisition System3Internship students1JSPS Research Fellowship (Young Scientists)1Othersインターンは総研大国際オリエンテーション制度による留学生(イタリア/スウェーデン)
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Fiscal Year2023年度(FY2023)Doctoral program1Master’s program3Students under Cooperative Graduate School System3Students under Skills Acquisition System3JSPS Research Fellowship (Young Scientists)1Others留学生: 1
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Fiscal Year2022年度(FY2022)Doctoral program1Master’s program2Students under Cooperative Graduate School System2Students under Skills Acquisition System2
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Fiscal Year2021年度(FY2021)Doctoral program1Master’s program3Students under Cooperative Graduate School System3Students under Skills Acquisition System1
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Fiscal Year2020年度(FY2020)Master’s program5Students under Cooperative Graduate School System5Students under Skills Acquisition System1
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Fiscal Year2019年度(FY2019)Master’s program6Students under Cooperative Graduate School System6Students under Skills Acquisition System2
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Fiscal Year2018年度(FY2018)Master’s program5Students under Cooperative Graduate School System5Students under Skills Acquisition System2Others留学生:1
● 指導学生の表彰・受賞
8-
Student Name中澤淳一郎Student affiliation総合研究大学院大学Award日本学術振興会若手研究者海外挑戦プログラムDate2025年3月-8月
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Student Name中澤淳一郎Student affiliation総合研究大学院大学Award総合研究大学院大学研究派遣プログラムDate2025年2月ー3月
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Student Name中澤淳一郎Student affiliation総合研究大学院大学Awardトビタテ留学日本代表プログラムDate2025年2月-2026年3月
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Student Name中澤淳一郎Student affiliation総合研究大学院大学Award第32回衛星設計コンテスト・アイデア大賞「氷衛星への超小型衝突探査機ICICLEs」Date2024年11月
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Student Name中澤淳一郎Student affiliation総合研究大学院大学Award日本学術振興会特別研究員(DC)Date2023年4月-2026年3月
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Student Name中澤淳一郎Student affiliation総合研究大学院大学Award帝人久村奨学金授与、公益財団法人帝人奨学会Date2023年4月
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Student Name中澤淳一郎Student affiliation総合研究大学院大学Award帝人久村奨学金授与、公益財団法人帝人奨学会Date2021年6月
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Student Name芹澤遼太Student affiliation法政大学大学院(ISAS連携大学院生)AwardCOSPAR Student Travel Grant Award、COSPAR, 彗星サンプルリターンを目指したCNT微粒子捕集材の実験的研究と数値解析による形状設計Date2020年7月
● 指導学生の顕著な論文
26-
Student nameSeira MOROZUMIStudent affiliation法政大学大学院理工学研究科(JAXA/ISAS連携大学院)Author(s), journal, volume number, pagination (year of publication)修士論文(2025)Title原子状酸素が存在するISSきぼう曝露部の垂直配向カーボンナノチューブによる低速衝突物の捕集性能と捕集物の調査
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Student nameRyoya SANOStudent affiliation法政大学大学院理工学研究科(JAXA/ISAS連携大学院)Author(s), journal, volume number, pagination (year of publication)修士論文(2025)Titleスペースデブリ防御バンパーにおけるAl合金およびAFRP中間材の比較検討
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Student nameGaia Lucrezia DALLA PRIAStudent affiliationLulea University of Technology, SwedenAuthor(s), journal, volume number, pagination (year of publication)Special Assignment in Space Science and Technology as a Part of Master's Degree (2025)TitleMicroscopic Analysis of Low-velocity Impact Signatures on the Tanpopo-2 Aerogel Panels and Possible Origin
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Student nameShoya IWATAStudent affiliation法政大学大学院理工学研究科(JAXA/ISAS連携大学院)Author(s), journal, volume number, pagination (year of publication)修士論文(2024)TitleSmart MLI宇宙実証機の地上校正による有効性検証と地球―月圏ダスト分布計測
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Student nameSimon MAILLOTStudent affiliation仏・高等科学技術学院(IPSA)Author(s), journal, volume number, pagination (year of publication)Engineering-level Internship Report as a Partial Filfullment of the MEng. Degree(2023)TitleModelling of Hypervelocity Impact Microparticle Environment for the EQUULEUS Mission
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Student name中澤 淳一郎Student affiliation総合研究大学院大学Author(s), journal, volume number, pagination (year of publication)特別研究I・修士論文相当(2023)Title固体微粒子の超高速衝突により生じる破砕・昇華・電離物質の包括的な捕集システムの開発
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Student name和久井 穀貴Student affiliation法政大学大学院理工学研究科(連携大学院生)Author(s), journal, volume number, pagination (year of publication)修士論文(2023)Titleたんぽぽ プロジェクト 1 および 2 の捕集パネルから 導く微粒子の衝突エネルギ推定と経年変化
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Student nameKota ISAWAStudent affiliation法政大学大学院理工学研究科(JAXA/ISAS連携大学院)Author(s), journal, volume number, pagination (year of publication)修士論文(2022)Titleエアロゲルによる宇宙固体微粒子の衝突捕集に関する実験および数値解析
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Student nameYuki TAKEDAStudent affiliation法政大学大学院理工学研究科(JAXA/ISAS連携大学院)Author(s), journal, volume number, pagination (year of publication)修士論文(2022)Title宇宙往還した垂直配向カーボンナノチューブによる低速衝突不定形粒子の捕集
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Student nameRyota SERIZAWAStudent affiliation法政大学大学院理工学研究科(JAXA/ISAS連携大学院)Author(s), journal, volume number, pagination (year of publication)修士論文(2021)Title彗星サンプルリターンを目指したCNT微粒子捕集材の実験的研究と数値解析による形状設計
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Student nameKosuke KANDOStudent affiliation法政大学大学院理工学研究科(JAXA/ISAS連携大学院)Author(s), journal, volume number, pagination (year of publication)修士論文(2021)Title宇宙科学研究に向けたレーザー励起微粒子衝突実験装置射出部の最適化
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Student nameErika MINAKAMIStudent affiliation法政大学大学院理工学研究科(JAXA/ISAS連携大学院)Author(s), journal, volume number, pagination (year of publication)修士論文(2021)Title微粒子環境モデルの更新に向けたたんぽぽ捕集パネル 構造部上の衝突痕分析
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Student nameKeita YAMAMOTOStudent affiliation法政大学大学院理工学研究科(JAXA/ISAS連携大学院)Author(s), journal, volume number, pagination (year of publication)修士論文(2020)TitleISSに搭載されたエアロゲル捕集材による超高速微粒子衝突頻度の経年変化に及ぼす二次イジェクタと遮蔽効果の影響
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Student nameShuto OIZUMIStudent affiliation法政大学大学院理工学研究科(JAXA/ISAS連携大学院)Author(s), journal, volume number, pagination (year of publication)修士論文(2020)Title彗星ランデブーサンプルリターンを目指した垂直配向カーボンナノチューブの微粒子捕集性能の評価
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Student nameHaruki NAKANOStudent affiliation法政大学大学院理工学研究科(JAXA/ISAS連携大学院)Author(s), journal, volume number, pagination (year of publication)修士論文(2020)Title圧電性薄膜センサに衝突した微粒子の質量推定のための出力信号周波数分析
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Student nameMaximilian EITELStudent affiliation独・シュトッツガルト大学院Author(s), journal, volume number, pagination (year of publication)技術研修報告書(2019)TitleTanpopo Particle Impact Analysis
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Student nameEigo ISHIKAWAStudent affiliation法政大学大学院理工学研究科(JAXA/ISAS連携大学院)Author(s), journal, volume number, pagination (year of publication)修士論文(2019)Title小天体ランデブーミッションに向けた低中速衝突ダストの検出回路の開発
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Student nameRitsuko JITSUKAWAStudent affiliation法政大学大学院理工学研究科(JAXA/ISAS連携大学院)Author(s), journal, volume number, pagination (year of publication)修士論文(2019)Title多層断熱材一体型微粒子衝突センサの性能評価
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Student nameMaximilian SOMMERStudent affiliation独・シュトッツガルト大学院(JSPSサマープログラム留学生)Author(s), journal, volume number, pagination (year of publication)修士論文(2018)TitleModelling Resonant Features in the Zodiacal Cloud
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Student nameHiroyuki MOCHIZUKIStudent affiliation法政大学大学院理工学研究科(JAXA/ISAS連携大学院)Author(s), journal, volume number, pagination (year of publication)修士論文(2018)Title複層薄膜貫通型微粒子衝突センサへの信号積分回路付与による質量推定精度の向上
● 専任大学名
1-
Affiliation (university)総合研究大学院大学(SOKENDAI)
● 所属する所内委員会
4-
ISAS Committee2025年12月-現在 高頻度宇宙科学実験プログラム検討タスクフォース・委員
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ISAS Committee2023年6月-現在 科学データ利用委員会・委員
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ISAS Committee2016年12月 - 2018年12月 宇宙理工学合同委員会下・宇宙科学の今後20年の構想を検討する委員会・委員
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ISAS Committee2006年4月 - 2019年3月 大学共同利用スペースプラズマ(現・超高速衝突実験)専門委員会・委員
