Heroes of Science: ChemistsMuir, M. M. Pattison (Matthew Moncrieff Pattison)
History
Heroes of Science: Chemists
Muir, M. M. Pattison (Matthew Moncrieff Pattison)
Chemistry -- History; Chemists
About this time Priestley met Dr. Franklin more than once in London. His
conversation seems to have incited Priestley to a further study of natural
philosophy. He began to examine electrical phenomena, and this led to his
writing and publishing a "History of Electricity," in the course of which
he found it necessary to make new experiments. The publication of the
results of these experiments brought him more into notice among scientific
men, and led to his election as a Fellow of the Royal Society, and to his
obtaining the degree of LL.D. from the University of Edinburgh. In the year
1767 Priestley removed to Leeds, where he spent six years as minister of
Millhill Chapel.
He was able to give freer expression to his theological views in Leeds than
could be done in smaller places, such as Needham and Nantwich. During this
time he wrote and published many theological and metaphysical treatises.
But, what is of more importance to us, he happened to live near a brewery.
Now, the accidental circumstances, as we call them, of Priestley's life
were frequently of the greatest importance in their effects on his
scientific work. Black had established the existence and leading properties
of fixed air about twelve or thirteen years before the time when Priestley
came to live near the brewery in Leeds. He had shown that this fixed air
is produced during alcoholic fermentation. Priestley knowing this used to
collect the fixed air which came off from the vats in the neighbouring
brewery, and amuse himself with observing its properties. But removing from
this part of the town his supplies of fixed air were stopped. As however he
had become interested in working with airs, he began to make fixed air for
himself from chalk, and in order to collect this air he devised a very
simple piece of apparatus which has played a most important part in the
later development of the chemistry of gases, or pneumatic chemistry.
Priestley's _pneumatic trough_ is at this day to be found in every
laboratory; it is extremely simple and extremely perfect. A dish of glass,
or earthenware, or wood is partly filled with water; a shelf runs across
the dish at a little distance beneath the surface of the water; a
wide-mouthed bottle is filled with water and placed, mouth downwards, over
a hole in this shelf. The gas which is to be collected in this bottle is
generated in a suitable vessel, from which a piece of glass or metal tubing
passes under the shelf and stops just where the hole is made. The gas which
comes from the apparatus bubbles up into the bottle, drives out the water,
and fills the bottle. When the bottle is full of gas, it is moved to one
side along the shelf, and another bottle filled with water is put in its
place. As the mouth of each bottle is under water there is no connection
between the gas inside and the air outside the bottle; the gas may
therefore be kept in the bottle until the experimenter wants it. (See Fig.
1.
Public-domain text, read in full here on John Shaqi.
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