TY - JOUR
T1 - Measurement and Manipulation of the Charge State of an Adsorbed Oxygen Adatom on the Rutile TiO2(110)-1×1 Surface by nc-AFM and KPFM
AU - Zhang, Quanzhen
AU - Li, Yan Jun
AU - Wen, Huan Fei
AU - Adachi, Yuuki
AU - Miyazaki, Masato
AU - Sugawara, Yasuhiro
AU - Xu, Rui
AU - Cheng, Zhi Hai
AU - Brndiar, Ján
AU - Kantorovich, Lev
AU - Štich, Ivan
N1 - Publisher Copyright:
© 2018 American Chemical Society.
PY - 2018/11/21
Y1 - 2018/11/21
N2 - For the first time, the charge states of adsorbed oxygen adatoms on the rutile TiO2(110)-1×1 surface are successfully measured and deliberately manipulated by a combination of noncontact atomic force microscopy and Kelvin probe force microscopy at 78 K under ultrahigh vacuum and interpreted by extensive density functional theory modeling. Several kinds of single and double oxygen adatom species are clearly distinguished and assigned to three different charge states: Oad -/2Oad -, Oad 2-/2Oad 2-, and Oad --Oad 2-, i.e., formal charges of either one or two electrons per atom. Because of the strong atomic-scale image contrast, these states are clearly resolved. The observations are supported by measurements of the short-range force and local contact potential difference as a function of the tip-sample distance as well as simulations. Comparison with the simulations suggests subatomic resolution by allowing us to resolve the rotated oxygen p orbitals. In addition, we manage to reversibly switch the charge states of the oxygen adatoms between the Oad - and Oad 2- states, both individually and next to another oxygen, by modulating the frequency shift at constant positive voltage during both charging and discharging processes, i.e., by the tip-induced electric field of one orientation. This work provides a novel route for the investigation of the charge state of the adsorbates and opens up novel prospects for studying transition-metal-oxide-based catalytic reactions.
AB - For the first time, the charge states of adsorbed oxygen adatoms on the rutile TiO2(110)-1×1 surface are successfully measured and deliberately manipulated by a combination of noncontact atomic force microscopy and Kelvin probe force microscopy at 78 K under ultrahigh vacuum and interpreted by extensive density functional theory modeling. Several kinds of single and double oxygen adatom species are clearly distinguished and assigned to three different charge states: Oad -/2Oad -, Oad 2-/2Oad 2-, and Oad --Oad 2-, i.e., formal charges of either one or two electrons per atom. Because of the strong atomic-scale image contrast, these states are clearly resolved. The observations are supported by measurements of the short-range force and local contact potential difference as a function of the tip-sample distance as well as simulations. Comparison with the simulations suggests subatomic resolution by allowing us to resolve the rotated oxygen p orbitals. In addition, we manage to reversibly switch the charge states of the oxygen adatoms between the Oad - and Oad 2- states, both individually and next to another oxygen, by modulating the frequency shift at constant positive voltage during both charging and discharging processes, i.e., by the tip-induced electric field of one orientation. This work provides a novel route for the investigation of the charge state of the adsorbates and opens up novel prospects for studying transition-metal-oxide-based catalytic reactions.
UR - http://www.scopus.com/inward/record.url?scp=85056406844&partnerID=8YFLogxK
U2 - 10.1021/jacs.8b07745
DO - 10.1021/jacs.8b07745
M3 - Article
C2 - 30403344
AN - SCOPUS:85056406844
SN - 0002-7863
VL - 140
SP - 15668
EP - 15674
JO - Journal of the American Chemical Society
JF - Journal of the American Chemical Society
IS - 46
ER -