Thomas Graham (chemist)
Thomas Graham | |
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Thomas Graham in 1856 | |
Born |
Glasgow, Scotland | 20 December 1805
Died | 16 September 1869 63) | (aged
Nationality | Scottish |
Fields | Chemistry |
Institutions |
Royal College of Science and Technology University College London |
Known for |
Graham's Law Dialysis |
Notable awards |
Royal Medal (1838, 1850) Copley Medal (1862) |
Signature |
Thomas Graham FRS FRSE DCL (20 December 1805[1] – 16 September 1869) was a nineteenth-century Scottish chemist who is best-remembered today for his pioneering work in dialysis and the diffusion of gases. He is regarded as the father of colloid chemistry.[2]
Life
Graham was born in Glasgow, and educated at Glasgow High School. Graham's father was a successful textile manufacturer, and wanted his son to enter into the Church of Scotland. Instead, defying his father's wishes, Graham became a student at the University of Glasgow in 1819. There he developed a strong interest in chemistry, studying under Prof Thomas Thomson (who was strangely impressed and influenced by this young man).[3] He left the University after receiving his M.A. in 1824.[4]
He later studied medicine at the University of Edinburgh and then briefly taught chemistry at the Portland Street Medical School and at the Glasgow Mechanics' Institution. He later became a professor of chemistry at numerous colleges, including the University of Strathclyde in Glasgow (appointed 1830 as the Freeland Chair of Chemistry), the Royal College of Science and Technology and the University of London.
In 1828 he was elected an Honorary Fellow of the Royal Society of Edinburgh his proposer being Edward Turner. He won the Society's Keith Medal for the period 1831-33.[5]
Graham also founded the Chemical Society of London in 1841. In 1866, he was elected a foreign member of the Royal Swedish Academy of Sciences.
His final position was as the Master of the Mint, where he stayed from 1855 until his death. He was the last person to hold that position.[6]
He died in Gordon Square in London but his body was returned to Glasgow for burial in the family plot at Glasgow Cathedral.[7]
He did not marry and had no children.
Publications
- On the Law of Diffusion of Gases (1833)
Scientific work
Thomas Graham is known for his studies on the behaviour of gases, which resulted in his formulation of two relationships, both since becoming known as "Graham's Laws," the first regarding gas diffusion,[8] and the second regarding gas effusion.[9] In the former case, Graham deduced that when measured repeatedly under the same conditions of pressure and temperature, the rate of diffusive mixing of a gas is inversely proportional to the square root of its density, and given the relationship between density and molar mass, also inversely proportional to the square root of its molar mass. In the same way, in the latter case, regarding effusion of a gas through a pin hole into a vacuum, Graham deduced that the rate of effusion of a gas is inversely proportional to the square root of its molar mass. These two are sometimes referred to as a combined law (describing both phenomena).
In applied areas, Graham also made fundamental discoveries related to dialysis, a process used in research and industrial settings, as well as in modern health care. Graham's study of colloids resulted in his ability to separate colloids and crystalloids using a so-called "dialyzer", using technology that is a rudimentary forerunner of technology in modern kidney dialysis machines. These studies were foundational in the field known as colloid chemistry, and Graham is credited as its founder.[6]
Honours, activities, and recognition
- Elected an Honorary Fellow of the Royal Society of Edinburgh (1828) receiving their Keith Prize for 1831-3
- Fellow of the Royal Society (1836)
- First President of the Chemical Society of London (1841)
- Royal Medal of the Royal Society (1837 and 1863)
- Honorary doctorate (DCL) from Oxford University (1853)
- Copley Medal of the Royal Society (1862)
- Prix Jecker of the Paris Academy of Sciences (1862)
- A statue of Graham, sculpted by William Brodie in George Square in Glasgow was erected by the city in 1872
- The University of Strathclyde, where Graham worked at one of its precursor institutions, has named the building housing the chemistry department the Thomas Graham Building.
- The headquarters of the Royal Society of Chemistry in Cambridge, UK is named Thomas Graham House.
See also
References
- ↑ "Thomas Graham | Scottish chemist". Encyclopedia Britannica. Retrieved 2015-12-24.
- ↑ https://www.strath.ac.uk/media/ps/comms/itallstartedhere/Graham.pdf
- ↑ https://www.strath.ac.uk/media/ps/comms/itallstartedhere/Graham.pdf
- ↑ BIOGRAPHICAL INDEX OF FORMER FELLOWS OF THE ROYAL SOCIETY OF EDINBURGH 1783 – 2002 (PDF). The Royal Society of Edinburgh. July 2006. ISBN 0 902 198 84 X.
- ↑ BIOGRAPHICAL INDEX OF FORMER FELLOWS OF THE ROYAL SOCIETY OF EDINBURGH 1783 – 2002 (PDF). The Royal Society of Edinburgh. July 2006. ISBN 0 902 198 84 X.
- 1 2 Pallab Ghosh (2009). Colloid and Interface Science. PHI Learning Pvt. Ltd. pp. 1–. ISBN 978-81-203-3857-9.
- ↑ BIOGRAPHICAL INDEX OF FORMER FELLOWS OF THE ROYAL SOCIETY OF EDINBURGH 1783 – 2002 (PDF). The Royal Society of Edinburgh. July 2006. ISBN 0 902 198 84 X.
- ↑ E. L. Cussler (15 January 2009). Diffusion: Mass Transfer in Fluid Systems. Cambridge University Press. pp. 13–. ISBN 978-0-521-87121-1.
- ↑ James S. Trefil (2003). The Nature of Science: An A-Z Guide to the Laws and Principles Governing Our Universe. Houghton Mifflin Harcourt. pp. 187–. ISBN 0-618-31938-7.
External links
Wikisource has original works written by or about: Thomas Graham |
Wikimedia Commons has media related to Thomas Graham (chemist). |
- Graham, Thomas (1833). "Researches on the Arseniates, Phosphates, and Modifications of Phosphoric Acid". Philosophical Transactions. The Alembic club. 123: 253–284. doi:10.1098/rstl.1833.0015. Retrieved 2008-03-20.
- Biography
- Obituary from Nature by A. W. Williamson
Government offices | ||
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Preceded by Sir John Herschel, Bt |
Master of the Mint 1855–1869 |
Office abolished |