TY - JOUR
T1 - Multi-spray pyrolysis for combinatorial synthesis of materials libraries and their high-throughput screening
T2 - Application to Li-ion conducting electrolytes
AU - Tirosh, Shay
AU - Aloni, Niv
AU - Cahen, David
AU - Golodnitsky, Diana
N1 - Publisher Copyright:
© 2022
PY - 2022/11/15
Y1 - 2022/11/15
N2 - We present a multi-head spray pyrolysis system and its application in high-throughput combinatorial synthesis for research of solid Li-ion conductors. Each spraying nozzle is fed with a separate precursor solution. The overlap of areas that are sprayed leads to unprecedented composition flexibility of the films obtained after pyrolysis. Thus, a library with a continuous composition spread of a Li-La-P-O model system is formed. The Li-ion conduction was determined on 169 cells of the library, using high throughput impedance measurements in a controlled environment. While the activation energies that were found were relatively small, Li-ion conduction was still low. This low mobility is hypothesized to originate from the sub-optimal occupation of Li sites in the non-stoichiometric materials' lattices, and/or porosity and tortuosity issues, which in turn, reduces their effective concentration and contribution to ion transport. In addition, porosity and tortuosity in sprayed electrolyte causes random orientation of the grains and grain boundaries in the solid followed by the random diffusion scattering of Li-ions and low Li-ions conductivity, despite low apparent activation energy of conduction.
AB - We present a multi-head spray pyrolysis system and its application in high-throughput combinatorial synthesis for research of solid Li-ion conductors. Each spraying nozzle is fed with a separate precursor solution. The overlap of areas that are sprayed leads to unprecedented composition flexibility of the films obtained after pyrolysis. Thus, a library with a continuous composition spread of a Li-La-P-O model system is formed. The Li-ion conduction was determined on 169 cells of the library, using high throughput impedance measurements in a controlled environment. While the activation energies that were found were relatively small, Li-ion conduction was still low. This low mobility is hypothesized to originate from the sub-optimal occupation of Li sites in the non-stoichiometric materials' lattices, and/or porosity and tortuosity issues, which in turn, reduces their effective concentration and contribution to ion transport. In addition, porosity and tortuosity in sprayed electrolyte causes random orientation of the grains and grain boundaries in the solid followed by the random diffusion scattering of Li-ions and low Li-ions conductivity, despite low apparent activation energy of conduction.
UR - http://www.scopus.com/inward/record.url?scp=85141488959&partnerID=8YFLogxK
U2 - 10.1016/j.ssi.2022.116050
DO - 10.1016/j.ssi.2022.116050
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AN - SCOPUS:85141488959
SN - 0167-2738
VL - 386
JO - Solid State Ionics
JF - Solid State Ionics
M1 - 116050
ER -