TY - JOUR
T1 - The Mean Inner Potential of Hematite α-Fe2O3Across the Morin Transition
AU - Auslender, Avi
AU - Basha, Adham
AU - Grave, Daniel A.
AU - Rothschild, Avner
AU - Diguez, Oswaldo
AU - Kohn, Amit
N1 - Publisher Copyright:
© 2023 The Author(s). Published by Oxford University Press on behalf of the Microscopy Society of America. All rights reserved.
PY - 2023/6/1
Y1 - 2023/6/1
N2 - We measure the mean inner potential (MIP) of hematite, α-Fe2O3, using electron holography and transmission electron microscopy. Since the MIP is sensitive to valence electrons, we propose its use as a chemical bonding parameter for solids. Hematite can test the sensitivity of the MIP as a bonding parameter because of the Morin magnetic phase transition. Across this transition temperature, no change in the corundum crystal structure can be distinguished, while a change in hybridized Fe-3d and O-2p states was reported, affecting ionic bonding. For a given crystallographic phase, the change in the MIP with temperature is expected to be minor due to thermal expansion. Indeed, we measure the temperature dependence in corundum α-Al2O3(112¯0) between 95 and 295 K showing a constant MIP value of ∼16.8 V within the measurement accuracy of 0.45 V. Thus, our objectives are as follows: measure the MIP of hematite as a function of temperature and examine the sensitivity of the MIP as a bonding parameter for crystals. Measured MIPs of α-Fe2O3(112¯0) above the Morin transition are equal, 17.85 ± 0.50 V, 17.93 ± 0.50 V, at 295 K, 230 K, respectively. Below the Morin transition, at 95 K, a significant reduction of ∼1.3 V is measured to 16.56 ± 0.46 V. We show that this reduction follows charge redistribution resulting in increased ionic bonding.
AB - We measure the mean inner potential (MIP) of hematite, α-Fe2O3, using electron holography and transmission electron microscopy. Since the MIP is sensitive to valence electrons, we propose its use as a chemical bonding parameter for solids. Hematite can test the sensitivity of the MIP as a bonding parameter because of the Morin magnetic phase transition. Across this transition temperature, no change in the corundum crystal structure can be distinguished, while a change in hybridized Fe-3d and O-2p states was reported, affecting ionic bonding. For a given crystallographic phase, the change in the MIP with temperature is expected to be minor due to thermal expansion. Indeed, we measure the temperature dependence in corundum α-Al2O3(112¯0) between 95 and 295 K showing a constant MIP value of ∼16.8 V within the measurement accuracy of 0.45 V. Thus, our objectives are as follows: measure the MIP of hematite as a function of temperature and examine the sensitivity of the MIP as a bonding parameter for crystals. Measured MIPs of α-Fe2O3(112¯0) above the Morin transition are equal, 17.85 ± 0.50 V, 17.93 ± 0.50 V, at 295 K, 230 K, respectively. Below the Morin transition, at 95 K, a significant reduction of ∼1.3 V is measured to 16.56 ± 0.46 V. We show that this reduction follows charge redistribution resulting in increased ionic bonding.
KW - Morin transition temperature
KW - hematite (α-FeO)
KW - mean inner potential (MIP)
KW - off-axis electron holography
KW - sapphire (α-AlO)
UR - http://www.scopus.com/inward/record.url?scp=85168718420&partnerID=8YFLogxK
U2 - 10.1093/micmic/ozad047
DO - 10.1093/micmic/ozad047
M3 - Article
C2 - 37749692
AN - SCOPUS:85168718420
SN - 1431-9276
VL - 29
SP - 919
EP - 930
JO - Microscopy and Microanalysis
JF - Microscopy and Microanalysis
IS - 3
ER -