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Kundrat V, Bukvisova K, Novak L, Prucha L, Houben L, Zalesak J, Vukusic A, Holec D, Tenne R, Pinkas J. W 18O 49 Nanowhiskers Decorating SiO 2 Nanofibers: Lessons from In Situ SEM/TEM Growth to Large Scale Synthesis and Fundamental Structural Understanding. CRYSTAL GROWTH & DESIGN 2024; 24:378-390. [PMID: 38188265 PMCID: PMC10767701 DOI: 10.1021/acs.cgd.3c01094] [Citation(s) in RCA: 0] [Impact Index Per Article: 0] [Reference Citation Analysis] [Abstract] [Grants] [Track Full Text] [Figures] [Subscribe] [Scholar Register] [Received: 09/13/2023] [Revised: 11/07/2023] [Accepted: 11/08/2023] [Indexed: 01/09/2024]
Abstract
Tungsten suboxide W18O49 nanowhiskers are a material of great interest due to their potential high-end applications in electronics, near-infrared light shielding, catalysis, and gas sensing. The present study introduces three main approaches for the fundamental understanding of W18O49 nanowhisker growth and structure. First, W18O49 nanowhiskers were grown from γ-WO3/a-SiO2 nanofibers in situ in a scanning electron microscope (SEM) utilizing a specially designed microreactor (μReactor). It was found that irradiation by the electron beam slows the growth kinetics of the W18O49 nanowhisker, markedly. Following this, an in situ TEM study led to some new fundamental understanding of the growth mode of the crystal shear planes in the W18O49 nanowhisker and the formation of a domain (bundle) structure. High-resolution scanning transmission electron microscopy analysis of a cross-sectioned W18O49 nanowhisker revealed the well-documented pentagonal Magnéli columns and hexagonal channel characteristics for this phase. Furthermore, a highly crystalline and oriented domain structure and previously unreported mixed structural arrangement of tungsten oxide polyhedrons were analyzed. The tungsten oxide phases found in the cross section of the W18O49 nanowhisker were analyzed by nanodiffraction and electron energy loss spectroscopy (EELS), which were discussed and compared in light of theoretical calculations based on the density functional theory method. Finally, the knowledge gained from the in situ SEM and TEM experiments was valorized in developing a multigram synthesis of W18O49/a-SiO2 urchin-like nanofibers in a flow reactor.
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Affiliation(s)
- Vojtech Kundrat
- Department
of Molecular Chemistry and Materials Science, Weizmann Institute of Science, Rehovot 7610001, Israel
- Thermo
Fisher Scientific, Vlastimila
Pecha 12, CZ-62700 Brno, Czech Republic
- Department
of Chemistry, Faculty of Science, Masaryk
University, Kotlarska 2, CZ-61137 Brno, Czech Republic
| | - Kristyna Bukvisova
- Thermo
Fisher Scientific, Vlastimila
Pecha 12, CZ-62700 Brno, Czech Republic
- CEITEC
BUT, Brno University of Technology, Purkynova 123, CZ-61200 Brno, Czech
Republic
| | - Libor Novak
- Thermo
Fisher Scientific, Vlastimila
Pecha 12, CZ-62700 Brno, Czech Republic
| | - Lukas Prucha
- The
Czech Academy of Sciences, Institute of
Scientific Instruments, Kralovopolska 147, CZ-61264 Brno, Czech Republic
| | - Lothar Houben
- Department
of Chemical Research Support, Weizmann Institute
of Science, Rehovot 7610001, Israel
| | - Jakub Zalesak
- Thermo
Fisher Scientific, Vlastimila
Pecha 12, CZ-62700 Brno, Czech Republic
- Department
of Chemistry and Physics of Materials, University
of Salzburg, Jakob-Haringer-Str.
2A, A-5020 Salzburg, Austria
| | - Antonio Vukusic
- Department
of Materials Science, Montanuniversität
Leoben, Franz-Josef-Straße 18, A-8700 Leoben, Austria
| | - David Holec
- Department
of Materials Science, Montanuniversität
Leoben, Franz-Josef-Straße 18, A-8700 Leoben, Austria
| | - Reshef Tenne
- Department
of Molecular Chemistry and Materials Science, Weizmann Institute of Science, Rehovot 7610001, Israel
| | - Jiri Pinkas
- Department
of Chemistry, Faculty of Science, Masaryk
University, Kotlarska 2, CZ-61137 Brno, Czech Republic
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Pašti IA, Dobrota AS, Migas DB, Johansson B, Skorodumova NV. Theoretical analysis of electrochromism of Ni-deficient nickel oxide - from bulk to surfaces. Phys Chem Chem Phys 2023; 25:7974-7985. [PMID: 36866780 DOI: 10.1039/d2cp05467a] [Citation(s) in RCA: 0] [Impact Index Per Article: 0] [Reference Citation Analysis] [Abstract] [Track Full Text] [Journal Information] [Subscribe] [Scholar Register] [Indexed: 03/01/2023]
Abstract
The development of new electrochromic materials and devices, like smart windows, has an enormous impact on the energy efficiency of modern society. One of the crucial materials in this technology is nickel oxide. Ni-deficient NiO shows anodic electrochromism, whose mechanism is still under debate. We use DFT+U calculations to show that Ni vacancy generation results in the formation of hole polarons localized at the two oxygens next to the vacancy. In the case of NiO bulk, upon Li insertion or injection of an extra electron into Ni-deficient NiO, one hole gets filled, and the hole bipolaron is converted into a hole polaron well-localized at one O atom, resulting from the transition between oxidized (colored) to reduced (bleached) state. In the case of the Ni-deficient NiO(001) surface, the qualitatively same picture is obtained upon embedding Li, Na, and K into the Ni surface vacancy, reinforcing the conclusion that the electron injection, resulting in the filling of the hole states, is responsible for the modulation of the optical properties of NiO. Hence, our results suggest a new mechanism of Ni-deficient NiO electrochromism not related to the change of the Ni oxidation states, i.e., the Ni2+/Ni3+ transition, but based on the formation and annihilation of hole polarons in oxygen p-states.
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Affiliation(s)
- Igor A Pašti
- University of Belgrade - Faculty of Physical Chemistry, Studentski trg 12-16, 11000 Belgrade, Serbia. .,Department of Materials Science and Engineering, School of Industrial Engineering and Management, KTH - Royal Institute of Technology, Brinellvägen 23, 100 44 Stockholm, Sweden.
| | - Ana S Dobrota
- University of Belgrade - Faculty of Physical Chemistry, Studentski trg 12-16, 11000 Belgrade, Serbia.
| | - Dmitri B Migas
- Belarusian State University of Informatics and Radioelectronics, P. Browka 6, 220013, Minsk, Belarus.,National Research Nuclear University MEPhI (Moscow Engineering Physics Institute), Kashirskoe shosse 31, 115409, Moscow, Russia.,Institute for Nuclear Problems of Belarusian State University, Bobruiskaya 11, 220006, Minsk, Belarus
| | - Börje Johansson
- Department of Materials Science and Engineering, School of Industrial Engineering and Management, KTH - Royal Institute of Technology, Brinellvägen 23, 100 44 Stockholm, Sweden. .,Department of Physics and Astronomy, Uppsala University, Box 516, 751 20 Uppsala, Sweden
| | - Natalia V Skorodumova
- Department of Materials Science and Engineering, School of Industrial Engineering and Management, KTH - Royal Institute of Technology, Brinellvägen 23, 100 44 Stockholm, Sweden.
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