I think better insights into Hydrogen state can be found here starting about page 13:
Title: The Chemical Elements and Their Compounds, Volume I, Sidgwick, 1950
Text: https://archive.org/stream/in.ernet.dli.2015.8077/2015.8077.The-Chemical-Elementns-And-Their-Compounds-Vol-i-1950_djvu.txt
Image: https://archive.org/details/in.ernet.dli.2015.8077/page/n7/mode/2up
Hydrogen atoms recombine to molecules rapidly and with a large
evolution of heat in contact with certain solids, especially metals.
Bonhoeffer has shown [20] that the efficiency of different metals in
causing the recombination of hydrogen atoms is almost exactly in the
reverse order to their overvoltage values, as the following list
shows; the metals are in the order of their catalytic efficiency, and
the overvoltage stands below each:
Pt > Pd > W > Fe > Cr > Ag > Cu > Pb > Hg(zero)
0.000 0.000 0.157 0.175 0.182 0.097 0.19 0.40 0.57
This seems to show that the overvoltage is due to the slowness of recom-
bination of the hydrogen atoms after they have neutralized their ionic
charges at the cathode, and suggests that the activity of ‘nascent hydro-
gen’ is caused by the presence of neutral hydrogen atoms in the liquid.
The heat of recombination of the atoms (51.7 kcals. per gramme) has
been ingeniously utilized by Langmuir in his ‘ atomic blowpipe ’ in which
a stream of highly atomized hydrogen is directed on the metal to be
heated ; this has the further advantage that the hot metal is in a reducing
--
Monatomic Hydrogen pg 17
atmosphere [21] ; according to v. Wartenberg [22] the temperature of the flame
near the electrode, as judged by the reversal of the spectral lines in com-
parison with those of the sun, is 4,600-4,800°. From the heats of reaction
(H + H = H2 + 103.4 kcals. ; 2H2 + 02 = 2H20 + 116 kcals.) it follows
that for equal volumes atomic hydrogen is 34 per cent, more efficient than
‘Knallgas’, and for equal weights it is 24 times as effective.
In the gas the rate of recombination is much slower. A collision of two
hydrogen atoms cannot of itself lead to the formation of a molecule,
because the resulting pair cannot get rid of the energy of reaction, and so
must separate again ; it is only fruitful when there is a three-body collision
2H + M -> H2M -> H2 + M,
so that the energy can be removed as kinetic energy of the H2 + M (where
M of course may be the wall) ; this difficulty arises in all reactions of
association or addition. Various determinations of the rate of recombina-
tion of hydrogen atoms [23] have confirmed this view, and have shown that
the rate is that required by the triple -collision theory ; the half-life of the
atoms is about 1 sec. at 0-2 mm. pressure.