Julyan Cartwright: Difference between revisions
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He is known for his research<ref>{{Cite web|url=https://scholar.google.com/citations?hl=en&user=V78-fnAAAAAJ|title = Julyan Cartwright - Google Scholar}}</ref> |
He is known for his research<ref>{{Cite web|url=https://scholar.google.com/citations?hl=en&user=V78-fnAAAAAJ|title = Julyan Cartwright - Google Scholar}}</ref> |
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on how form and pattern emerge in nature,<ref>{{Cite |
on how form and pattern emerge in nature,<ref>{{Cite journal|url=https://chemistry-europe.onlinelibrary.wiley.com/doi/full/10.1002/syst.202200002|title =Guest Editorial - Chemobrionics and Systems Chemistry|journal =ChemSystemsChem|date =May 2022|volume =4|issue =3|doi =10.1002/syst.202200002|last1 =Čejková|first1 =Jitka|last2 =Cartwright|first2 =Julyan H. E.|s2cid =246779143}}</ref> the dynamics of natural systems,<ref>{{Cite web|url=http://www.iact.csic.es/personal/julyan_cartwright/cartwright/research.html|title = The dynamics of natural systems}}</ref> across disciplinary boundaries, including his studies of the dynamics of passive scalars in [[chaotic mixing|chaotic advection]] of fluids,<ref>{{cite journal | last1=Cartwright | first1=Julyan H. E. | last2=Feingold | first2=Mario | last3=Piro | first3=Oreste | title=Chaotic advection in three-dimensional unsteady incompressible laminar flow | journal=Journal of Fluid Mechanics | publisher=Cambridge University Press (CUP) | volume=316 | date=1996-06-10 | issn=0022-1120 | doi=10.1017/s0022112096000535 | pages=259–284|arxiv=chao-dyn/9504012| s2cid=930710 }}</ref><ref>{{cite journal | last1=Babiano | first1=Armando | last2=Cartwright | first2=Julyan H. E. | last3=Piro | first3=Oreste | last4=Provenzale | first4=Antonello | title=Dynamics of a Small Neutrally Buoyant Sphere in a Fluid and Targeting in Hamiltonian Systems | journal=Physical Review Letters | publisher=American Physical Society (APS) | volume=84 | issue=25 | date=2000-06-19 | issn=0031-9007 | doi=10.1103/physrevlett.84.5764 | pages=5764–5767| pmid=10991049 |arxiv=nlin/0007033| bibcode=2000PhRvL..84.5764B | s2cid=35884368 }}</ref> [[bailout embedding]]s,<ref>{{cite journal | last1=Cartwright | first1=Julyan H. E. | last2=Magnasco | first2=Marcelo O. | last3=Piro | first3=Oreste | title=Bailout embeddings, targeting of invariant tori, and the control of Hamiltonian chaos | journal=Physical Review E | publisher=American Physical Society (APS) | volume=65 | issue=4 | date=2002-04-03 | issn=1063-651X | doi=10.1103/physreve.65.045203 | page=045203(R)| pmid=12005907 |arxiv=nlin/0111005| bibcode=2002PhRvE..65d5203C | s2cid=23498762 }}</ref> the [[Bogdanov map]],<ref> |
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Arrowsmith, D. K.; Cartwright, J. H. E.; Lansbury, A. N.; and Place, C. M. "The Bogdanov Map: Bifurcations, Mode Locking, and Chaos in a Dissipative System." Int. J. Bifurcation Chaos 3, 803–842, 1993.</ref> the influence of [[fluid mechanics]] on the development of vertebrate [[left-right asymmetry (biology)|left-right asymmetry]],<ref>{{cite journal | last1=Cartwright | first1=J. H. E. | last2=Piro | first2=O. | last3=Tuval | first3=I. | title=Fluid-dynamical basis of the embryonic development of left-right asymmetry in vertebrates | journal=Proceedings of the National Academy of Sciences | volume=101 | issue=19 | date=2004-04-26 | issn=0027-8424 | doi=10.1073/pnas.0402001101 | pages=7234–7239|pmid=15118088| pmc=409902 | bibcode=2004PNAS..101.7234C | doi-access=free }}</ref> [[self-organization]] of [[biomineralization]] structures of [[mollusc shell]] including mother of pearl ([[nacre]])<ref name='Checa2011'>{{cite journal|doi=10.1016/j.jsb.2011.09.011|pmid=21982842|title=Mineral bridges in nacre|year=2011|last1=Checa|first1=Antonio|last2=Cartwright|first2=Julyan|last3=Willinger|first3=Marc-Georg|journal=Journal of Structural Biology|volume=176|issue=3|pages=330–339}}</ref><ref>Cartwright, J. H. E., Checa, A. G., Escribano, B., & Sainz-Díaz, C. I. (2009). Spiral and target patterns in bivalve nacre manifest a natural excitable medium from layer growth of a biological liquid crystal. Proceedings of the National Academy of Sciences, 106(26), 10499-10504.</ref><ref>Cartwright, J. H. E., & Checa, A. G. (2007). The dynamics of nacre self-assembly. Journal of the Royal Society Interface, 4(14), 491-504.</ref> and [[cuttlebone]],<ref>{{Cite journal|last1=Checa|first1=Antonio G.|last2=Cartwright|first2=Julyan H. E.|last3=Sánchez-Almazo|first3=Isabel|last4=Andrade|first4=José P.|last5=Ruiz-Raya|first5=Francisco|date=September 2015|title=The cuttlefish Sepia officinalis (Sepiidae, Cephalopoda) constructs cuttlebone from a liquid-crystal precursor|url= |journal=Scientific Reports|language=en|volume=5|issue=1|pages=11513|doi=10.1038/srep11513|issn=2045-2322|pmc=4471886|pmid=26086668| arxiv=1506.08290 | bibcode=2015NatSR...511513C }}</ref> [[excitable media]],<ref>{{cite journal | last1=Cartwright | first1=Julyan H. E. | last2=Eguíluz | first2=Víctor M. | last3=Hernández-García | first3=Emilio | last4=Piro | first4=Oreste | title=Dynamics of Elastic Excitable Media | journal=International Journal of Bifurcation and Chaos | volume=09 | issue=11 | year=1999 | issn=0218-1274 | doi=10.1142/s0218127499001620|arxiv=chao-dyn/9905035 | pages=2197–2202| bibcode=1999IJBC....9.2197C | s2cid=9120223 }}</ref> and chemobrionics:<ref>Silvana S. S. Cardoso, Julyan H. E. Cartwright, Jitka Čejková, Leroy Cronin, Anne De Wit, Simone Giannerini, Dezső Horváth, Alírio Rodrigues, Michael J. Russell, C. Ignacio Sainz-Díaz, Ágota Tóth; Chemobrionics: From Self-Assembled Material Architectures to the Origin of Life. Artif Life 2020; 26 (3): 315–326. doi: https://doi.org/10.1162/artl_a_00323</ref> [[self-assembly|self-assembling]] porous precipitate structures, such as [[chemical gardens]],<ref>{{Cite journal|last1=Barge|first1=Laura M.|last2=Cardoso|first2=Silvana S. S.|last3=Cartwright|first3=Julyan H. E.|last4=Cooper|first4=Geoffrey J. T.|last5=Cronin|first5=Leroy|last6=De Wit|first6=Anne|last7=Doloboff|first7=Ivria J.|last8=Escribano|first8=Bruno|last9=Goldstein|first9=Raymond E.|date=2015-08-26|title=From Chemical Gardens to Chemobrionics|journal=Chemical Reviews|volume=115|issue=16|pages=8652–8703|doi=10.1021/acs.chemrev.5b00014|pmid=26176351|issn=0009-2665|doi-access=free}}</ref> [[brinicle]]s,<ref>{{Cite journal|last=Cartwright J H E, B Escribano, D L González, C I Sainz-Díaz & I Tuval|date=2013|title=Brinicles as a case of inverse chemical gardens|journal=Langmuir|volume=29|issue=25|pages=7655–7660|doi=10.1021/la4009703|pmid=23551166|arxiv=1304.1774|s2cid=207727184}}</ref> and submarine [[hydrothermal vent]]s.<ref>{{Cite journal |url=https://royalsocietypublishing.org/doi/10.1098/rsfs.2019.0104 |title = The origin of life: the submarine alkaline vent theory at 30| year=2019 | doi=10.1098/rsfs.2019.0104 | last1=Cartwright | first1=Julyan H. E. | last2=Russell | first2=Michael J. | journal=Interface Focus | volume=9 | issue=6 | s2cid=204753957 }}</ref> |
Arrowsmith, D. K.; Cartwright, J. H. E.; Lansbury, A. N.; and Place, C. M. "The Bogdanov Map: Bifurcations, Mode Locking, and Chaos in a Dissipative System." Int. J. Bifurcation Chaos 3, 803–842, 1993.</ref> the influence of [[fluid mechanics]] on the development of vertebrate [[left-right asymmetry (biology)|left-right asymmetry]],<ref>{{cite journal | last1=Cartwright | first1=J. H. E. | last2=Piro | first2=O. | last3=Tuval | first3=I. | title=Fluid-dynamical basis of the embryonic development of left-right asymmetry in vertebrates | journal=Proceedings of the National Academy of Sciences | volume=101 | issue=19 | date=2004-04-26 | issn=0027-8424 | doi=10.1073/pnas.0402001101 | pages=7234–7239|pmid=15118088| pmc=409902 | bibcode=2004PNAS..101.7234C | doi-access=free }}</ref> [[self-organization]] of [[biomineralization]] structures of [[mollusc shell]] including mother of pearl ([[nacre]])<ref name='Checa2011'>{{cite journal|doi=10.1016/j.jsb.2011.09.011|pmid=21982842|title=Mineral bridges in nacre|year=2011|last1=Checa|first1=Antonio|last2=Cartwright|first2=Julyan|last3=Willinger|first3=Marc-Georg|journal=Journal of Structural Biology|volume=176|issue=3|pages=330–339}}</ref><ref>Cartwright, J. H. E., Checa, A. G., Escribano, B., & Sainz-Díaz, C. I. (2009). Spiral and target patterns in bivalve nacre manifest a natural excitable medium from layer growth of a biological liquid crystal. Proceedings of the National Academy of Sciences, 106(26), 10499-10504.</ref><ref>Cartwright, J. H. E., & Checa, A. G. (2007). The dynamics of nacre self-assembly. Journal of the Royal Society Interface, 4(14), 491-504.</ref> and [[cuttlebone]],<ref>{{Cite journal|last1=Checa|first1=Antonio G.|last2=Cartwright|first2=Julyan H. E.|last3=Sánchez-Almazo|first3=Isabel|last4=Andrade|first4=José P.|last5=Ruiz-Raya|first5=Francisco|date=September 2015|title=The cuttlefish Sepia officinalis (Sepiidae, Cephalopoda) constructs cuttlebone from a liquid-crystal precursor|url= |journal=Scientific Reports|language=en|volume=5|issue=1|pages=11513|doi=10.1038/srep11513|issn=2045-2322|pmc=4471886|pmid=26086668| arxiv=1506.08290 | bibcode=2015NatSR...511513C }}</ref> [[excitable media]],<ref>{{cite journal | last1=Cartwright | first1=Julyan H. E. | last2=Eguíluz | first2=Víctor M. | last3=Hernández-García | first3=Emilio | last4=Piro | first4=Oreste | title=Dynamics of Elastic Excitable Media | journal=International Journal of Bifurcation and Chaos | volume=09 | issue=11 | year=1999 | issn=0218-1274 | doi=10.1142/s0218127499001620|arxiv=chao-dyn/9905035 | pages=2197–2202| bibcode=1999IJBC....9.2197C | s2cid=9120223 }}</ref> and chemobrionics:<ref>Silvana S. S. Cardoso, Julyan H. E. Cartwright, Jitka Čejková, Leroy Cronin, Anne De Wit, Simone Giannerini, Dezső Horváth, Alírio Rodrigues, Michael J. Russell, C. Ignacio Sainz-Díaz, Ágota Tóth; Chemobrionics: From Self-Assembled Material Architectures to the Origin of Life. Artif Life 2020; 26 (3): 315–326. doi: https://doi.org/10.1162/artl_a_00323</ref> [[self-assembly|self-assembling]] porous precipitate structures, such as [[chemical gardens]],<ref>{{Cite journal|last1=Barge|first1=Laura M.|last2=Cardoso|first2=Silvana S. S.|last3=Cartwright|first3=Julyan H. E.|last4=Cooper|first4=Geoffrey J. T.|last5=Cronin|first5=Leroy|last6=De Wit|first6=Anne|last7=Doloboff|first7=Ivria J.|last8=Escribano|first8=Bruno|last9=Goldstein|first9=Raymond E.|date=2015-08-26|title=From Chemical Gardens to Chemobrionics|journal=Chemical Reviews|volume=115|issue=16|pages=8652–8703|doi=10.1021/acs.chemrev.5b00014|pmid=26176351|issn=0009-2665|doi-access=free}}</ref> [[brinicle]]s,<ref>{{Cite journal|last=Cartwright J H E, B Escribano, D L González, C I Sainz-Díaz & I Tuval|date=2013|title=Brinicles as a case of inverse chemical gardens|journal=Langmuir|volume=29|issue=25|pages=7655–7660|doi=10.1021/la4009703|pmid=23551166|arxiv=1304.1774|s2cid=207727184}}</ref> and submarine [[hydrothermal vent]]s.<ref>{{Cite journal |url=https://royalsocietypublishing.org/doi/10.1098/rsfs.2019.0104 |title = The origin of life: the submarine alkaline vent theory at 30| year=2019 | doi=10.1098/rsfs.2019.0104 | last1=Cartwright | first1=Julyan H. E. | last2=Russell | first2=Michael J. | journal=Interface Focus | volume=9 | issue=6 | s2cid=204753957 }}</ref> |
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https://www.granadahoy.com/granada/lista-completa-investigadores-Universidad-Granada_0_1623138968.html | title = La lista completa de los investigadores más destacados de la Universidad de Granada}}</ref> He is chair of the international [[European Cooperation in Science and Technology|COST]] action Chemobionics<ref>{{Cite web|url=https://www.cost.eu/cost-action/chemobrionics/| title = Chemobrionics - COST}}</ref> and chair of the scientific advisory committee to the international conference Dynamics Days Europe.<ref>{{Cite web|url=http://www.dynamicsdays.org |title = European Dynamics Days}}</ref> He is editor of the [[Cambridge University Press]] journal Elements in Dynamical Systems.<ref>{{Cite web|url=https://cambridge.org/core/what-we-publish/elements/elements-in-dynamical-systems|title =Elements in Dynamical Systems}}</ref> |
https://www.granadahoy.com/granada/lista-completa-investigadores-Universidad-Granada_0_1623138968.html | title = La lista completa de los investigadores más destacados de la Universidad de Granada}}</ref> He is chair of the international [[European Cooperation in Science and Technology|COST]] action Chemobionics<ref>{{Cite web|url=https://www.cost.eu/cost-action/chemobrionics/| title = Chemobrionics - COST}}</ref> and chair of the scientific advisory committee to the international conference Dynamics Days Europe.<ref>{{Cite web|url=http://www.dynamicsdays.org |title = European Dynamics Days}}</ref> He is editor of the [[Cambridge University Press]] journal Elements in Dynamical Systems.<ref>{{Cite web|url=https://cambridge.org/core/what-we-publish/elements/elements-in-dynamical-systems|title =Elements in Dynamical Systems}}</ref> |
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Press interest in his research has highlighted his work on chemical gardens,<ref>{{Cite web|url=https://www.sciencedaily.com/releases/2015/02/150217122706.htm|title = Recent research provides new data on chemical gardens, whose formation is a mystery for science}}</ref><ref>{{Cite web|url=https://www.chemistryworld.com/opinion/column-the-crucible/3005043.article |title =Philip Ball considers the vegetative soul of an inorganic woodland}}</ref> on pitch perception in the auditory system,<ref>{{Cite |
Press interest in his research has highlighted his work on chemical gardens,<ref>{{Cite web|url=https://www.sciencedaily.com/releases/2015/02/150217122706.htm|title = Recent research provides new data on chemical gardens, whose formation is a mystery for science}}</ref><ref>{{Cite web|url=https://www.chemistryworld.com/opinion/column-the-crucible/3005043.article |title =Philip Ball considers the vegetative soul of an inorganic woodland}}</ref> on pitch perception in the auditory system,<ref>{{Cite journal|url=https://www.nature.com/articles/news990708-7|title = Pump up the bass| year=1999 | doi=10.1038/news990708-7 | last1=Ball | first1=Philip | journal=Nature }}</ref><ref>{{Cite web|url=https://www.thefreelibrary.com/A+pitch+for+decoding+frequency+more+simply-a055309025 |title =A pitch for decoding frequency more simply}}</ref> on how symmetry is broken so that the heart is on the left,<ref>{{Cite journal|url=https://rupress.org/jcb/article/165/4/456/34014/Tilt-back-to-turn-left|title = Tilt back to turn left |year = 2004 |doi = 10.1083/jcb1654rr1 |last1 = Wells |first1 = William A. |journal = Journal of Cell Biology |volume = 165 |issue = 4 |page = 456 |pmc = 2249968 }}</ref><ref>{{Cite web|url=https://www.sciencenews.org/article/broken-symmetry |title = Broken Symmetry| date=11 September 2009 }}</ref> on how bees construct spiral bee combs,<ref>{{Cite web|url=https://www.smithsonianmag.com/smart-news/stingless-bees-build-spiral-honeycombs-grow-crystals-180975405/|title = Scientists Crack the Mathematical Mystery of Stingless Bees' Spiral Honeycombs}}</ref><ref>{{Cite web|url=https://www.sciencealert.com/scientists-discover-these-incredible-beehives-have-a-lot-in-common-with-crystals|title = Scientists Find These Stunning Spiral Beehives Have a Lot in Common With Crystals}}</ref><ref>{{Cite web|url=https://www.livescience.com/tetragonula-spiral-bee-comb-grow-like-crystals.html|title = Strange, spiral bee combs look like fantastical crystal palaces. Now we know why.| website=[[Live Science]] | date=22 July 2020 }}</ref> on the formation of nacre<ref>{{Cite web|url=https://www.sciencedaily.com/releases/2009/02/090212112741.htm |title = Mother-of-pearl From Shells Could Inspire Regeneration of Human Bones}}</ref> and pearls,<ref>{{Cite web|url=https://www.technologyreview.com/2013/04/18/178984/pearls-and-the-puzzle-of-how-they-form-perfect-spheres/|title = Pearls and the Puzzle of How They Form Perfect Spheres}}</ref><ref>{{Cite web|url=https://phys.org/news/2013-06-pearly.html|title =Pearly perfection}}</ref><ref>{{Cite web|url=https://www.newscientist.com/article/mg21829155-700-micro-ratchet-spins-pearls-with-perfect-symmetry/|title = Micro-ratchet spins pearls with perfect symmetry}}</ref><ref>{{Cite web|url=http://www.sci-news.com/biology/article01167-how-pearls-form.html|title = Researchers Try to Explain How Perfect Pearls Form}}</ref><ref>{{Cite web|url=https://www.bbc.com/future/article/20130623-how-pearls-get-their-round-shape |title =How pearls get their round shape}}</ref> on how [[brinicle]] ice tubes grow both on Earth<ref>{{Cite magazine | url=https://www.wired.com/2013/05/swimming-beneath-the-brinicles-in-antarctica/ |title = Swimming Beneath the Brinicles, in Antarctica| magazine=Wired | last1=Marlow | first1=Jeffrey }}</ref><ref>{{Cite web|url= https://www.sciencedaily.com/releases/2013/04/130424112316.htm|title = Ice tubes in polar seas -- 'brinicles' or 'sea stalactites' -- provide clues to origin of life}}</ref><ref>{{Cite web | url=https://www.technologyreview.com/2013/04/09/179087/brinicles-and-the-origin-of-life/|title =Brinicles and the Origin of Life}}</ref> and on [[Jupiter]]'s moon, [[Europa (moon)|Europa]],<ref>{{Cite web | url=http://astrobiology.com/2019/03/self-assembling-ice-membranes-on-europa.html |title = Self-Assembling Ice Membranes on Europa – Astrobiology}}</ref> on the information content of complex self-assembled materials<ref>{{Cite web|url= https://www.technologyreview.com/2012/07/19/255574/crystals-information-and-the-origin-of-life/|title = Crystals, Information And The Origin of Life}}</ref><ref>{{Cite journal |url=https://www.nature.com/articles/nmat3437|title =Bringing crystals to life|year =2012|doi =10.1038/nmat3437|last1 =Ball|first1 =Philip|journal =Nature Materials|volume =11|issue =10|page =840|pmid =23001232}}</ref><ref>{{Cite journal |url=https://www.nature.com/articles/nphys2393|title =Instructions for assembly|year =2012|doi =10.1038/nphys2393|last1 =Buchanan|first1 =Mark|journal =Nature Physics|volume =8|issue =8|page =577|bibcode =2012NatPh...8..577B}}</ref><ref>{{Cite journal |url=https://www.nature.com/articles/nmat4122|title =Beyond the crystal|year =2014|doi =10.1038/nmat4122|last1 =Ball|first1 =Philip|journal =Nature Materials|volume =13|issue =11|page =1003|pmid =25342529}}</ref> on the [[rogue wave]]<ref>{{Cite web | url=https://nautil.us/when-good-waves-go-rogue-rp-4824/|title = When Good Waves Go Rogue| date=25 June 2014 }}</ref> nature of [[Hokusai|Hokusai's]] famous artwork [[the Great Wave off Kanagawa]],<ref>{{Cite web|url=https://blogs.egu.eu/geolog/2019/07/08/imaggeo-on-mondays-recreating-monster-waves-in-art-and-science/|title = Recreating monster waves in art and science}}</ref><ref>{{Cite web | url=https://www.usgs.gov/media/images/hokusai-under-wave-kanagawa |title = Hokusai Under the Wave off Kanagawa}}</ref><ref>{{Cite web | url=https://www.sueddeutsche.de/kultur/serie-am-wasser-der-anstoessige-superstar-1.4123445|title =Der anstößige Superstar}}</ref> on the [[Möbius strip]] before [[August Ferdinand Möbius|Möbius]],<ref>{{Cite web | url=https://www.cnr.it/en/news/6973/scoperta-la-piu-antica-raffigurazione-del-nastro-di-moebius|title = Scoperta la più antica raffigurazione del nastro di Moebius}}</ref><ref>{{Cite web | url= https://auralcrave.com/2021/12/07/escher-il-nastro-di-mobius-e-gli-idiot-savant-fin-dove-si-puo-arrivare-col-pensiero/|title = Escher, il nastro di Möbius e gli idiot savant: fin dove si può arrivare col pensiero?| date=7 December 2021 }}</ref> on the possible melting of oceanic [[methane hydrate]] deposits owing to [[climate change]],<ref>{{Cite web | url=https://phys.org/news/2017-03-percent-global-methane-deposits-due.html |title = 3.5 percent of global methane deposits could be melted by 2100 due to climate change}}</ref> and on the origin of life at alkaline submarine hydrothermal vents<ref>{{Cite web | url=https://www.ideal.es/miugr/expertos-internacionales-debaten-20190312191937-nt.html|title = Expertos internacionales debaten en Granada los últimos avances científicos relacionados con el origen de la vida| date=12 March 2019 }}</ref> and their relevance to [[astrobiology]].<ref>{{Cite web | url=https://www.labnews.co.uk/article/2028991/search_for_origin_of_life_reaches_interstellar_dust|title = Search for origin of life reaches interstellar dust}}</ref> |
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== References == |
== References == |
Revision as of 15:03, 29 July 2022
Julyan Cartwright | |
---|---|
Born | |
Citizenship | British |
Alma mater | University of Newcastle upon Tyne, Queen Mary College, University of London |
Scientific career | |
Fields | dynamical systems, nonlinear science, complexity, pattern formation |
Institutions | CSIC (Spanish National Research Council) |
Doctoral advisor | David Arrowsmith[1] |
Other academic advisors | Ian C. Percival, Keith Runcorn, David Tritton |
Julyan Cartwright is an interdisciplinary physicist working in Granada, Spain at the Andalusian Earth Sciences Institute[3] of the CSIC (Spanish National Research Council) and affiliated with the Carlos I Institute of Theoretical and Computational Physics[4] at the University of Granada.
He is known for his research[5] on how form and pattern emerge in nature,[6] the dynamics of natural systems,[7] across disciplinary boundaries, including his studies of the dynamics of passive scalars in chaotic advection of fluids,[8][9] bailout embeddings,[10] the Bogdanov map,[11] the influence of fluid mechanics on the development of vertebrate left-right asymmetry,[12] self-organization of biomineralization structures of mollusc shell including mother of pearl (nacre)[13][14][15] and cuttlebone,[16] excitable media,[17] and chemobrionics:[18] self-assembling porous precipitate structures, such as chemical gardens,[19] brinicles,[20] and submarine hydrothermal vents.[21]
He is among the researchers in the Stanford list of the World's top 2% most cited scientists.[22][23] He is chair of the international COST action Chemobionics[24] and chair of the scientific advisory committee to the international conference Dynamics Days Europe.[25] He is editor of the Cambridge University Press journal Elements in Dynamical Systems.[26]
Press interest in his research has highlighted his work on chemical gardens,[27][28] on pitch perception in the auditory system,[29][30] on how symmetry is broken so that the heart is on the left,[31][32] on how bees construct spiral bee combs,[33][34][35] on the formation of nacre[36] and pearls,[37][38][39][40][41] on how brinicle ice tubes grow both on Earth[42][43][44] and on Jupiter's moon, Europa,[45] on the information content of complex self-assembled materials[46][47][48][49] on the rogue wave[50] nature of Hokusai's famous artwork the Great Wave off Kanagawa,[51][52][53] on the Möbius strip before Möbius,[54][55] on the possible melting of oceanic methane hydrate deposits owing to climate change,[56] and on the origin of life at alkaline submarine hydrothermal vents[57] and their relevance to astrobiology.[58]
References
- ^ Julyan Cartwright at the Mathematics Genealogy Project
- ^ "Julyan Cartwright - Personal history".
- ^ "IACT Staff - Julyan Cartwright".
- ^ "List of members of the iC1".
- ^ "Julyan Cartwright - Google Scholar".
- ^ Čejková, Jitka; Cartwright, Julyan H. E. (May 2022). "Guest Editorial - Chemobrionics and Systems Chemistry". ChemSystemsChem. 4 (3). doi:10.1002/syst.202200002. S2CID 246779143.
- ^ "The dynamics of natural systems".
- ^ Cartwright, Julyan H. E.; Feingold, Mario; Piro, Oreste (1996-06-10). "Chaotic advection in three-dimensional unsteady incompressible laminar flow". Journal of Fluid Mechanics. 316. Cambridge University Press (CUP): 259–284. arXiv:chao-dyn/9504012. doi:10.1017/s0022112096000535. ISSN 0022-1120. S2CID 930710.
- ^ Babiano, Armando; Cartwright, Julyan H. E.; Piro, Oreste; Provenzale, Antonello (2000-06-19). "Dynamics of a Small Neutrally Buoyant Sphere in a Fluid and Targeting in Hamiltonian Systems". Physical Review Letters. 84 (25). American Physical Society (APS): 5764–5767. arXiv:nlin/0007033. Bibcode:2000PhRvL..84.5764B. doi:10.1103/physrevlett.84.5764. ISSN 0031-9007. PMID 10991049. S2CID 35884368.
- ^ Cartwright, Julyan H. E.; Magnasco, Marcelo O.; Piro, Oreste (2002-04-03). "Bailout embeddings, targeting of invariant tori, and the control of Hamiltonian chaos". Physical Review E. 65 (4). American Physical Society (APS): 045203(R). arXiv:nlin/0111005. Bibcode:2002PhRvE..65d5203C. doi:10.1103/physreve.65.045203. ISSN 1063-651X. PMID 12005907. S2CID 23498762.
- ^ Arrowsmith, D. K.; Cartwright, J. H. E.; Lansbury, A. N.; and Place, C. M. "The Bogdanov Map: Bifurcations, Mode Locking, and Chaos in a Dissipative System." Int. J. Bifurcation Chaos 3, 803–842, 1993.
- ^ Cartwright, J. H. E.; Piro, O.; Tuval, I. (2004-04-26). "Fluid-dynamical basis of the embryonic development of left-right asymmetry in vertebrates". Proceedings of the National Academy of Sciences. 101 (19): 7234–7239. Bibcode:2004PNAS..101.7234C. doi:10.1073/pnas.0402001101. ISSN 0027-8424. PMC 409902. PMID 15118088.
- ^ Checa, Antonio; Cartwright, Julyan; Willinger, Marc-Georg (2011). "Mineral bridges in nacre". Journal of Structural Biology. 176 (3): 330–339. doi:10.1016/j.jsb.2011.09.011. PMID 21982842.
- ^ Cartwright, J. H. E., Checa, A. G., Escribano, B., & Sainz-Díaz, C. I. (2009). Spiral and target patterns in bivalve nacre manifest a natural excitable medium from layer growth of a biological liquid crystal. Proceedings of the National Academy of Sciences, 106(26), 10499-10504.
- ^ Cartwright, J. H. E., & Checa, A. G. (2007). The dynamics of nacre self-assembly. Journal of the Royal Society Interface, 4(14), 491-504.
- ^ Checa, Antonio G.; Cartwright, Julyan H. E.; Sánchez-Almazo, Isabel; Andrade, José P.; Ruiz-Raya, Francisco (September 2015). "The cuttlefish Sepia officinalis (Sepiidae, Cephalopoda) constructs cuttlebone from a liquid-crystal precursor". Scientific Reports. 5 (1): 11513. arXiv:1506.08290. Bibcode:2015NatSR...511513C. doi:10.1038/srep11513. ISSN 2045-2322. PMC 4471886. PMID 26086668.
- ^ Cartwright, Julyan H. E.; Eguíluz, Víctor M.; Hernández-García, Emilio; Piro, Oreste (1999). "Dynamics of Elastic Excitable Media". International Journal of Bifurcation and Chaos. 09 (11): 2197–2202. arXiv:chao-dyn/9905035. Bibcode:1999IJBC....9.2197C. doi:10.1142/s0218127499001620. ISSN 0218-1274. S2CID 9120223.
- ^ Silvana S. S. Cardoso, Julyan H. E. Cartwright, Jitka Čejková, Leroy Cronin, Anne De Wit, Simone Giannerini, Dezső Horváth, Alírio Rodrigues, Michael J. Russell, C. Ignacio Sainz-Díaz, Ágota Tóth; Chemobrionics: From Self-Assembled Material Architectures to the Origin of Life. Artif Life 2020; 26 (3): 315–326. doi: https://doi.org/10.1162/artl_a_00323
- ^ Barge, Laura M.; Cardoso, Silvana S. S.; Cartwright, Julyan H. E.; Cooper, Geoffrey J. T.; Cronin, Leroy; De Wit, Anne; Doloboff, Ivria J.; Escribano, Bruno; Goldstein, Raymond E. (2015-08-26). "From Chemical Gardens to Chemobrionics". Chemical Reviews. 115 (16): 8652–8703. doi:10.1021/acs.chemrev.5b00014. ISSN 0009-2665. PMID 26176351.
- ^ Cartwright J H E, B Escribano, D L González, C I Sainz-Díaz & I Tuval (2013). "Brinicles as a case of inverse chemical gardens". Langmuir. 29 (25): 7655–7660. arXiv:1304.1774. doi:10.1021/la4009703. PMID 23551166. S2CID 207727184.
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: CS1 maint: multiple names: authors list (link) - ^ Cartwright, Julyan H. E.; Russell, Michael J. (2019). "The origin of life: the submarine alkaline vent theory at 30". Interface Focus. 9 (6). doi:10.1098/rsfs.2019.0104. S2CID 204753957.
- ^ Jeroen Baas; Boyack, Kevin; Ioannidis, John P. A. (2021). "August 2021 data-update for "Updated science-wide author databases of standardized citation indicators"". 3. Elsevier BV. doi:10.17632/btchxktzyw.3.
{{cite journal}}
: Cite journal requires|journal=
(help) - ^ "La lista completa de los investigadores más destacados de la Universidad de Granada".
- ^ "Chemobrionics - COST".
- ^ "European Dynamics Days".
- ^ "Elements in Dynamical Systems".
- ^ "Recent research provides new data on chemical gardens, whose formation is a mystery for science".
- ^ "Philip Ball considers the vegetative soul of an inorganic woodland".
- ^ Ball, Philip (1999). "Pump up the bass". Nature. doi:10.1038/news990708-7.
- ^ "A pitch for decoding frequency more simply".
- ^ Wells, William A. (2004). "Tilt back to turn left". Journal of Cell Biology. 165 (4): 456. doi:10.1083/jcb1654rr1. PMC 2249968.
- ^ "Broken Symmetry". 11 September 2009.
- ^ "Scientists Crack the Mathematical Mystery of Stingless Bees' Spiral Honeycombs".
- ^ "Scientists Find These Stunning Spiral Beehives Have a Lot in Common With Crystals".
- ^ "Strange, spiral bee combs look like fantastical crystal palaces. Now we know why". Live Science. 22 July 2020.
- ^ "Mother-of-pearl From Shells Could Inspire Regeneration of Human Bones".
- ^ "Pearls and the Puzzle of How They Form Perfect Spheres".
- ^ "Pearly perfection".
- ^ "Micro-ratchet spins pearls with perfect symmetry".
- ^ "Researchers Try to Explain How Perfect Pearls Form".
- ^ "How pearls get their round shape".
- ^ Marlow, Jeffrey. "Swimming Beneath the Brinicles, in Antarctica". Wired.
- ^ "Ice tubes in polar seas -- 'brinicles' or 'sea stalactites' -- provide clues to origin of life".
- ^ "Brinicles and the Origin of Life".
- ^ "Self-Assembling Ice Membranes on Europa – Astrobiology".
- ^ "Crystals, Information And The Origin of Life".
- ^ Ball, Philip (2012). "Bringing crystals to life". Nature Materials. 11 (10): 840. doi:10.1038/nmat3437. PMID 23001232.
- ^ Buchanan, Mark (2012). "Instructions for assembly". Nature Physics. 8 (8): 577. Bibcode:2012NatPh...8..577B. doi:10.1038/nphys2393.
- ^ Ball, Philip (2014). "Beyond the crystal". Nature Materials. 13 (11): 1003. doi:10.1038/nmat4122. PMID 25342529.
- ^ "When Good Waves Go Rogue". 25 June 2014.
- ^ "Recreating monster waves in art and science".
- ^ "Hokusai Under the Wave off Kanagawa".
- ^ "Der anstößige Superstar".
- ^ "Scoperta la più antica raffigurazione del nastro di Moebius".
- ^ "Escher, il nastro di Möbius e gli idiot savant: fin dove si può arrivare col pensiero?". 7 December 2021.
- ^ "3.5 percent of global methane deposits could be melted by 2100 due to climate change".
- ^ "Expertos internacionales debaten en Granada los últimos avances científicos relacionados con el origen de la vida". 12 March 2019.
- ^ "Search for origin of life reaches interstellar dust".