Age, Biography and Wiki
Rodney Baxter was born on 8 February, 1940 in London, United Kingdom. Discover Rodney Baxter's Biography, Age, Height, Physical Stats, Dating/Affairs, Family and career updates. Learn How rich is He in this year and how He spends money? Also learn how He earned most of networth at the age of 83 years old?
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Age |
84 years old |
Zodiac Sign |
Aquarius |
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8 February, 1940 |
Birthday |
8 February |
Birthplace |
London, United Kingdom |
Nationality |
United Kingdom |
We recommend you to check the complete list of Famous People born on 8 February.
He is a member of famous with the age 84 years old group.
Rodney Baxter Height, Weight & Measurements
At 84 years old, Rodney Baxter height not available right now. We will update Rodney Baxter's Height, weight, Body Measurements, Eye Color, Hair Color, Shoe & Dress size soon as possible.
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Dating & Relationship status
He is currently single. He is not dating anyone. We don't have much information about He's past relationship and any previous engaged. According to our Database, He has no children.
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Rodney Baxter Net Worth
His net worth has been growing significantly in 2022-2023. So, how much is Rodney Baxter worth at the age of 84 years old? Rodney Baxter’s income source is mostly from being a successful . He is from United Kingdom. We have estimated
Rodney Baxter's net worth
, money, salary, income, and assets.
Net Worth in 2023 |
$1 Million - $5 Million |
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Under Review |
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Pending |
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Under Review |
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Timeline
His use of the Yang–Baxter equation led to the formulation and the study of representations of the quantum group by Vladimir Drinfeld in the 1980s, and quantum generalisations of affine algebras, and they are quasi-triangular Hopf algebras which yield solutions of the Yang–Baxter equation and provide insight into the properties of corresponding statistical models.
Baxter gained recognition in 1971 when he used the star-triangle relation to calculate the free energy of the eight-vertex model, and went on to similarly solve the hard hexagon model (1980) and the chiral Potts model in 1988. He also developed the corner transfer matrix method for calculating the order parameters of the eight-vertex and similar models. In 2005 he used the method of Michio Jimbo, Tetsuji Miwa and Nakayashiki to verify Albertini, McCoy, Perk and Tang's conjecture for the order parameter of the chiral Potts model.
Baxter was educated at Bancroft's School and Trinity College, Cambridge (BA, MA), before relocating to the Australian National University in Canberra to complete his PhD. He was among the first doctoral graduates in theoretical physics from the ANU, graduating in 1964. Then, in 1964 and 1965, he worked for the Iraq Petroleum Company. He worked as an assistant professor at the Massachusetts Institute of Technology from 1968 until 1970, when he took up a position at the ANU, and served a term as the Head of the Department of Theoretical Physics in the Institute of Advanced Study, until he retired in 2002. He is currently the Emeritus Professor of Physics. In 1984, he was awarded a Doctor of Science by Cambridge. He is a Fellow of the Australian Academy of Science, Royal Society of London, and the Isaac Newton Institute, Cambridge, where he was Royal Society Research Professor in 1992. In 1980 he was awarded the Boltzmann Medal, the main recognition for research contribution concerning statistical mechanics. In 2006, he was awarded the Lars Onsager Prize "For his original and groundbreaking contributions to the field of exactly solved models in statistical mechanics, which continue to inspire profound developments in statistical physics and related fields".
Rodney James Baxter FRS FAA (born 8 February 1940 in London, United Kingdom) is an Australian physicist, specialising in statistical mechanics. He is well known for his work in exactly solved models, in particular vertex models such as the six-vertex model and eight-vertex model, and the chiral Potts model and hard hexagon model. A recurring theme in the solution of such models, the Yang–Baxter equation, also known as the "star–triangle relation", is named in his honour.