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@ARTICLE{Solozhenko:418157,
author = {Solozhenko, Vladimir and Turkevich, Vladimir Z.},
title = {{P}hase {D}iagram of the {B}–{BN} {S}ystem at {P}ressures
up to 24 {GP}a: {E}xperimental {S}tudy and {T}hermodynamic
{A}nalysis},
journal = {The journal of physical chemistry / C},
volume = {122},
number = {15},
issn = {1932-7447},
address = {Washington, DC},
publisher = {Soc.},
reportid = {PUBDB-2019-00244},
pages = {8505 - 8509},
year = {2018},
note = {© American Chemical Society},
abstract = {Phase relations in the B–BN system have been studied ex
situ and in situ at pressures 2–20 GPa and temperatures up
to 2800 K. The evolution of topology of the B–BN phase
diagram has been investigated up to 24 GPa using models of
phenomenological thermodynamics with interaction parameters
derived from our experimental data on phase equilibria at
high pressures and high temperatures. There are two
thermodynamically stable boron subnitrides in the system
i.e. B$_{13}$N$_2$ and B$_{50}$N$_2$. Above 16.5 GPa, the
$B_{50}N_2 ⇄ L + B_{13}N_2$ peritectic reaction transforms
to the solid-phase reaction of $B_{50}N_2$ decomposition
into tetragonal boron $(t′-B_{52})$ and B$_{13}$N$_2$,
while the incongruent type of B$_{13}$N$_2$ melting changes
to the congruent type only above 23.5 GPa. The constructed
phase diagram provides fundamentals for directed
high-pressure synthesis of superhard phases in the B–BN
system.},
cin = {DOOR},
ddc = {530},
cid = {I:(DE-H253)HAS-User-20120731},
pnm = {899 - ohne Topic (POF3-899)},
pid = {G:(DE-HGF)POF3-899},
experiment = {EXP:(DE-H253)D-F2.1-20150101},
typ = {PUB:(DE-HGF)16},
UT = {WOS:000430896500052},
doi = {10.1021/acs.jpcc.8b00102},
url = {https://bib-pubdb1.desy.de/record/418157},
}