Formation of a Nanorod-Assembled TiO2 Actinomorphic-Flower-like Microsphere Film via Ta Doping Using a Facile Solution Immersion Method for Humidity Sensing
Abstract
:1. Introduction
2. Materials and Methods
3. Results
4. Conclusions
Supplementary Materials
Author Contributions
Funding
Data Availability Statement
Acknowledgments
Conflicts of Interest
References
- Liu, R.; Ji, Z.; Xie, S.; Chen, J.; Zhang, J.; Cao, Y.; Wang, J. Fabrication of {001}-facet enriched anatase TiO2/TiOF2 heterostructures with controllable morphology for enhanced photocatalytic activity. Mater. Today Commun. 2021, 26, 102060. [Google Scholar] [CrossRef]
- Hamed, N.K.A.; Ahmad, M.K.; Hairom, N.H.H.; Faridah, A.B.; Mamat, M.H.; Mohamed, A.; Suriani, A.B.; Nafarizal, N.; Fazli, F.I.M.; Mokhtar, S.M.; et al. Dependence of photocatalysis on electron trapping in Ag-doped flowerlike rutile-phase TiO2 film by facile hydrothermal method. Appl. Surf. Sci. 2020, 534, 147571. [Google Scholar] [CrossRef]
- Ying, C.; Shi, C.; Lv, K.; Ma, C.; Guo, F.; Fu, H. Fabrication of Sb2S3 sensitized TiO2 nanorod array solar cells using spin-coating assisted successive ionic layer absorption and reaction. Mater. Today Commun. 2019, 19, 393–395. [Google Scholar]
- Muqoyyanah; Suriani, A.B.; Mohamed, A.; Hashim, N.; Mamat, M.H.; Ahmad, M.K.; Othman, M.H.D.; Mohamed, M.A.; Nurhafizah, M.D.; Birowosuto, M.D.; et al. Effects of TiO2 phase and nanostructures as photoanode on the performance of dye-sensitized solar cells. Bull. Mater. Sci. 2021, 44, 10. [Google Scholar] [CrossRef]
- Cappelli, I.; Fort, A.; Lo Grasso, A.; Panzardi, E.; Mugnaini, M.; Vignoli, V. RH Sensing by Means of TiO2 Nanoparticles: A Comparison among Different Sensing Techniques Based on Modeling and Chemical/Physical Interpretation. Chemosensors 2020, 8, 89. [Google Scholar] [CrossRef]
- Musa, M.Z.; Mamat, M.H.; Vasimalai, N.; Subki, A.S.R.A.; Hassan, H.; Malek, M.F.; Ahmad, M.Y.; Rusop, M. Recent Progress on Titanium Dioxide-Based Humidity Sensor: Structural Modification, Doping, and Composite Approach. In Enabling Industry 4.0 through Advances in Manufacturing and Materials; Springer: Singapore, 2022. [Google Scholar]
- Chen, K.; Zhang, H.; Tong, H.; Wang, L.; Tao, L.; Wang, K.; Zhang, Y.; Zhou, X. Down-conversion Ce-doped TiO2 nanorod arrays and commercial available carbon based perovskite solar cells: Improved performance and UV photostability. Int. J. Hydrog. Energy 2021, 46, 5677–5688. [Google Scholar]
- Jiang, Y.; Pang, H.; Sun, X.; Yang, Z.; Ding, Y.; Liu, Z.; Zhang, P. TiO2 nanobelts with ultra-thin mixed C/SiOx coating as high-performance photo/photoelectrochemical hydrogen evolution materials. Appl. Surf. Sci. 2021, 537, 147861. [Google Scholar] [CrossRef]
- Septiani, N.L.W.; Saputro, A.G.; Kaneti, Y.V.; Maulana, A.L.; Fathurrahman, F.; Lim, H.; Yuliarto, B.; Nugraha; Dipojono, H.K.; Golberg, D.; et al. Hollow Zinc Oxide Microsphere–Multiwalled Carbon Nanotube Composites for Selective Detection of Sulfur Dioxide. ACS Appl. Nano Mater. 2020, 3, 8982–8996. [Google Scholar] [CrossRef]
- Wang, X.; Liu, F.; Chen, X.; Lu, G.; Song, X.; Tian, J.; Cui, H.; Zhang, G.; Gao, K. SnO2 core-shell hollow microspheres co-modification with Au and NiO nanoparticles for acetone gas sensing. Powder Technol. 2020, 364, 159–166. [Google Scholar] [CrossRef]
- Chammingkwan, P.; Mai, L.T.T.; Ikeda, T.; Mohan, P. Nanostructured magnesium oxide microspheres for efficient carbon dioxide capture. J. CO2 Util. 2021, 51, 101652. [Google Scholar]
- Shu, Y.; Zhao, T.; Li, X.; Yang, L.; Cao, S. Enhanced electromagnetic wave absorption properties integrating diverse loss mechanism of 3D porous Ni/NiO microspheres. J. Alloy. Compd. 2022, 897, 163227. [Google Scholar] [CrossRef]
- Parimon, N.; Mamat, M.H.; Shameem Banu, I.B.; Vasimalai, N.; Ahmad, M.K.; Suriani, A.B.; Mohamed, A.; Rusop, M. Fabrication, structural, optical, electrical, and humidity sensing characteristics of hierarchical NiO nanosheet/nanoball-flower-like structure films. J. Mater. Sci. Mater. Electron. 2020, 31, 11673–11687. [Google Scholar]
- Lan, K.; Wang, R.; Zhang, W.; Zhao, Z.; Elzatahry, A.; Zhang, X.; Liu, Y.; Al-Dhayan, D.; Xia, Y.; Zhao, D. Mesoporous TiO2 Microspheres with Precisely Controlled Crystallites and Architectures. Chem 2018, 4, 2436–2450. [Google Scholar]
- Arjunkumar, B.; Ramalingam, G.; Ramesh, M.; Ponraj, J.S.; Rao, K.V. Investigation of uni-directional nanorods composed microspheres and branched TiO2 nanorods towards solar cell application. Mater. Lett. 2020, 273, 127900. [Google Scholar] [CrossRef]
- Ren, Y.; Zhang, G.; Huo, J.; Li, J.; Liu, Y.; Guo, S. Flower-like TiO2 hollow microspheres with mixed-phases for high-pseudocapacitive lithium storage. J. Alloy. Compd. 2022, 902, 163730. [Google Scholar]
- Huai, X.; Rizzi, G.A.; Wang, Y.; Qi, Q.; Granozzi, G.; Fu, W.; Zhang, Z. Suppressed charge carrier trap states and double photon absorption in substitutional Ta-doped TiO2-NT array. Nano Today 2022, 43, 101407. [Google Scholar] [CrossRef]
- Hsu, C.-H.; Chen, K.-T.; Lin, L.-Y.; Wu, W.-Y.; Liang, L.-S.; Gao, P.; Qiu, Y.; Zhang, X.-Y.; Huang, P.-H.; Lien, S.-Y.; et al. Tantalum-Doped TiO2 Prepared by Atomic Layer Deposition and Its Application in Perovskite Solar Cells. Nanomaterials 2021, 11, 1504. [Google Scholar] [CrossRef]
- Nitta, A.; Takashima, M.; Murakami, N.; Takase, M.; Ohtani, B. Reversed double-beam photoacoustic spectroscopy of metal-oxide powders for estimation of their energy-resolved distribution of electron traps and electronic-band structure. Electrochim. Acta 2018, 264, 83–90. [Google Scholar] [CrossRef] [Green Version]
- Kobielusz, M.; Nitta, A.; Macyk, W.; Ohtani, B. Combined Spectroscopic Methods of Determination of Density of Electronic States: Comparative Analysis of Diffuse Reflectance Spectroelectrochemistry and Reversed Double-Beam Photoacoustic Spectroscopy. J. Phys. Chem. Lett. 2021, 12, 3019–3025. [Google Scholar] [CrossRef] [PubMed]
- Suriani, A.B.; Alfarisa, S.; Mohamed, A.; Isa, I.M.; Kamari, A.; Hashim, N.; Mamat, M.H.; Mohamed, A.R.; Rusop, M. Quasi-aligned carbon nanotubes synthesised from waste engine oil. Mater. Lett. 2015, 139, 220–223. [Google Scholar] [CrossRef]
- Malek, M.F.; Robaiah, M.; Suriani, A.B.; Mamat, M.H.; Ahmad, M.K.; Soga, T.; Rusop, M.; Abdullah, S.; Khusaimi, Z.; Aslam, M.; et al. The utilization of waste cooking palm oil as a green carbon source for the growth of multilayer graphene. J. Aust. Ceram. Soc. 2021, 57, 347–358. [Google Scholar] [CrossRef]
- Jeong, H.; Noh, Y.; Lee, D. Highly stable and sensitive resistive flexible humidity sensors by means of roll-to-roll printed electrodes and flower-like TiO2 nanostructures. Ceram. Int. 2019, 45, 985–992. [Google Scholar]
- Saqib, M.; Ali Khan, S.; Mutee Ur Rehman, H.M.; Yang, Y.; Kim, S.; Rehman, M.M.; Young Kim, W. High-Performance Humidity Sensor Based on the Graphene Flower/Zinc Oxide Composite. Nanomaterials 2021, 11, 242. [Google Scholar] [CrossRef] [PubMed]
- Zhang, D.; Chang, H.; Li, P.; Liu, R.; Xue, Q. Fabrication and characterization of an ultrasensitive humidity sensor based on metal oxide/graphene hybrid nanocomposite. Sens. Actuators B Chem. 2016, 225, 233–240. [Google Scholar] [CrossRef]
- Mohamed Zahidi, M.; Mamat, M.H.; Malek, M.F.; Yaakob, M.K.; Ahmad, M.K.; Abu Bakar, S.; Mohamed, A.; A Subki, A.S.R.; Mahmood, M.R. Evaluating Different TiO2 Nanoflower-Based Composites for Humidity Detection. Sensors 2022, 22, 5794. [Google Scholar] [CrossRef]
- Guo, L.; Li, X.; Li, W.; Gou, C.; Zheng, M.; Zhang, Y.; Chen, Z.; Hong, Y. High-sensitive humidity sensor based on MoS2/graphene oxide quantum dot nanocomposite. Mater. Chem. Phys. 2022, 287, 126146. [Google Scholar] [CrossRef]
- Li, X.; Zhuang, Z.; Qi, D.; Zhao, C. High sensitive and fast response humidity sensor based on polymer composite nanofibers for breath monitoring and non-contact sensing. Sens. Actuators B Chem. 2021, 330, 129239. [Google Scholar] [CrossRef]
- Yao, X.; Chen, L.; Luo, Z.; Ye, C.; Liang, F.; Yang, T.; Liu, X.; Tian, X.; Bi, H.; Wang, C.; et al. High-performance flexible humidity sensors for breath detection and non-touch switches. Nano Sel. 2022, 3, 1168–1177. [Google Scholar] [CrossRef]
- Yusoff, M.M.; Mamat, M.H.; Abdullah, M.A.R.; Ismail, A.S.; Malek, M.F.; Zoolfakar, A.S.; Al Junid, S.A.M.; Suriani, A.B.; Mohamed, A.; Ahmad, M.K.; et al. Coupling heterostructure of thickness-controlled nickel oxide nanosheets layer and titanium dioxide nanorod arrays via immersion route for self-powered solid-state ultraviolet photosensor applications. Measurement 2020, 149, 106982. [Google Scholar]
- Hameed, T.A.; Azab, A.A.; Ibrahim, R.S.; Rady, K.E. Optimization, structural, optical and magnetic properties of TiO2/CoFe2O4 nanocomposites. Ceram. Int. 2022, 48, 20418–20425. [Google Scholar]
- Chen, X.; Peng, X.; Jiang, L.; Yuan, X.; Fei, J.; Zhang, W. Photocatalytic removal of antibiotics by MOF-derived Ti3+- and oxygen vacancy-doped anatase/rutile TiO2 distributed in a carbon matrix. Chem. Eng. J. 2022, 427, 130945. [Google Scholar] [CrossRef]
- Samriti; Prateek; Joshi, M.C.; Gupta, R.K.; Prakash, J. Hydrothermal synthesis and Ta doping of TiO2 nanorods: Effect of soaking time and doping on optical and charge transfer properties for enhanced SERS activity. Mater. Chem. Phys. 2022, 278, 125642. [Google Scholar] [CrossRef]
- Raguram, T.; Rajni, K.S. Synthesis and characterisation of Cu-Doped TiO2 nanoparticles for DSSC and photocatalytic applications. Int. J. Hydrog. Energy 2022, 47, 4674–4689. [Google Scholar] [CrossRef]
- Pan, X.; Yang, M.-Q.; Fu, X.; Zhang, N.; Xu, Y.-J. Defective TiO2 with oxygen vacancies: Synthesis, properties and photocatalytic applications. Nanoscale 2013, 5, 3601–3614. [Google Scholar] [CrossRef] [PubMed]
- Liu, Y.; Zhou, W.; Wu, P. Electronic structure and optical properties of Ta-doped and (Ta, N)-codoped SrTiO3 from hybrid functional calculations. J. Appl. Phys. 2017, 121, 075102. [Google Scholar]
- Takci, D.K. Synthesis, characterization and dielectric properties of rutile TiO2 nanoflowers. J. Cryst. Growth 2022, 578, 126442. [Google Scholar] [CrossRef]
- Ranjan, R.; Prakash, A.; Singh, A.; Singh, A.; Garg, A.; Gupta, R.K. Effect of tantalum doping in a TiO2 compact layer on the performance of planar spiro-OMeTAD free perovskite solar cells. J. Mater. Chem. A 2018, 6, 1037–1047. [Google Scholar] [CrossRef]
- Hu, W.; Lau, K.; Liu, Y.; Withers, R.L.; Chen, H.; Fu, L.; Gong, B.; Hutchison, W. Colossal Dielectric Permittivity in (Nb + Al) Codoped Rutile TiO2 Ceramics: Compositional Gradient and Local Structure. Chem. Mater. 2015, 27, 4934–4942. [Google Scholar] [CrossRef]
- Liu, G.; Fan, H.; Xu, J.; Liu, Z.; Zhao, Y. Colossal permittivity and impedance analysis of niobium and aluminum co-doped TiO2 ceramics. RSC Adv. 2016, 6, 48708–48714. [Google Scholar] [CrossRef]
- Singh, N.; Prakash, J.; Misra, M.; Sharma, A.; Gupta, R.K. Dual Functional Ta-Doped Electrospun TiO2 Nanofibers with Enhanced Photocatalysis and SERS Detection for Organic Compounds. ACS Appl. Mater. Interfaces 2017, 9, 28495–28507. [Google Scholar] [CrossRef]
- Kaleji, B.K.; Sarraf-Mamoory, R.; Fujishima, A. Influence of Nb dopant on the structural and optical properties of nanocrystalline TiO2 thin films. Mater. Chem. Phys. 2012, 132, 210–215. [Google Scholar] [CrossRef]
- Yang, L.; Feng, N.; Deng, F. Aluminum-Doped TiO2 with Dominant {001} Facets: Microstructure and Property Evolution and Photocatalytic Activity. J. Phys. Chem. C 2022, 126, 5555–5563. [Google Scholar] [CrossRef]
- Chen, H.; Wu, T.; Li, X.; Lu, S.; Zhang, F.; Wang, Y.; Zhao, H.; Liu, Q.; Luo, Y.; Asiri, A.M.; et al. Modulating Oxygen Vacancies of TiO2 Nanospheres by Mn-Doping to Boost Electrocatalytic N2 Reduction. ACS Sustain. Chem. Eng. 2021, 9, 1512–1517. [Google Scholar] [CrossRef]
- Si, J.; Wang, Y.; Xia, X.; Peng, S.; Wang, Y.; Xiao, S.; Zhu, L.; Bao, Y.; Huang, Z.; Gao, Y. Novel quantum dot and nano-sheet TiO2 (B) composite for enhanced photocatalytic H2—Production without Co-Catalyst. J. Power Sources 2017, 360, 353–359. [Google Scholar] [CrossRef]
- Tashkandi, N.Y.; Albukhari, S.M.; Ismail, A.A. Mesoporous TiO2 enhanced by anchoring Mn3O4 for highly efficient photocatalyst toward photo-oxidation of ciprofloxacin. Opt. Mater. 2022, 127, 112274. [Google Scholar] [CrossRef]
- Matouk, Z.; Islam, M.; Gutiérrez, M.; Pireaux, J.J.; Achour, A. X-ray Photoelectron Spectroscopy (XPS) Analysis of Ultrafine Au Nanoparticles Supported over Reactively Sputtered TiO2 Films. Nanomaterials 2022, 12, 3692. [Google Scholar] [CrossRef] [PubMed]
- Rui, Y.; Li, Y.; Zhang, Q.; Wang, H. Facile synthesis of rutile TiO2 nanorod microspheres for enhancing light-harvesting of dye-sensitized solar cells. CrystEngComm 2013, 15, 1651–1656. [Google Scholar] [CrossRef]
- Ohtani, B.; Ogawa, Y.; Nishimoto, S.-i. Photocatalytic Activity of Amorphous-Anatase Mixture of Titanium(IV) Oxide Particles Suspended in Aqueous Solutions. J. Phys. Chem. B 1997, 101, 3746–3752. [Google Scholar] [CrossRef] [Green Version]
- Carey, J.J.; McKenna, K.P. Screening Doping Strategies to Mitigate Electron Trapping at Anatase TiO2 Surfaces. J. Phys. Chem. C 2019, 123, 22358–22367. [Google Scholar] [CrossRef] [Green Version]
- Mazzolini, P.; Russo, V.; Casari, C.S.; Hitosugi, T.; Nakao, S.; Hasegawa, T.; Li Bassi, A. Vibrational-Electrical Properties Relationship in Donor-Doped TiO2 by Raman Spectroscopy. J. Phys. Chem. C 2016, 120, 18878–18886. [Google Scholar] [CrossRef]
- Zhang, C.; Zhang, Y.; Cao, K.; Guo, Z.; Han, Y.; Hu, W.; Wu, Y.; She, Y.; He, Y. Ultrasensitive and reversible room-temperature resistive humidity sensor based on layered two-dimensional titanium carbide. Ceram. Int. 2021, 47, 6463–6469. [Google Scholar] [CrossRef]
- Sun, L.; Wang, B.; Wang, Y. A Novel Silicon Carbide Nanosheet for High-Performance Humidity Sensor. Adv. Mater. Interfaces 2018, 5, 1701300. [Google Scholar] [CrossRef]
- Li, F.; Li, P.; Zhang, H. Preparation and Research of a High-Performance ZnO/SnO2 Humidity Sensor. Sensors 2022, 22, 293. [Google Scholar] [CrossRef]
- Lv, X.; Yang, G.; Feng, C.; Lin, T. Highly sensitive humidity sensor based on the solid solution Zr0.2Ti0.8O2 nanofibers. J. Alloy. Compd. 2022, 891, 161958. [Google Scholar] [CrossRef]
- Gong, M.; Li, Y.; Guo, Y.; Lv, X.; Dou, X. 2D TiO2 nanosheets for ultrasensitive humidity sensing application benefited by abundant surface oxygen vacancy defects. Sens. Actuators B Chem. 2018, 262, 350–358. [Google Scholar] [CrossRef]
- Li, N.; Jiang, Y.; Zhou, C.; Xiao, Y.; Meng, B.; Wang, Z.; Huang, D.; Xing, C.; Peng, Z. High-Performance Humidity Sensor Based on Urchin-Like Composite of Ti3C2 MXene-Derived TiO2 Nanowires. ACS Appl. Mater. Interfaces 2019, 11, 38116–38125. [Google Scholar] [CrossRef]
- Jyothilal, H.; Shukla, G.; Walia, S.; Kundu, S.; Angappane, S. Humidity sensing and breath analyzing applications of TiO2 slanted nanorod arrays. Sens. Actuators A Phys. 2020, 301, 111758. [Google Scholar] [CrossRef]
- Blank, T.A.; Eksperiandova, L.P.; Belikov, K.N. Recent trends of ceramic humidity sensors development: A review. Sens. Actuators B Chem. 2016, 228, 416–442. [Google Scholar] [CrossRef]
- Duan, Z.; Zhao, Q.; Wang, S.; Huang, Q.; Yuan, Z.; Zhang, Y.; Jiang, Y.; Tai, H. Halloysite nanotubes: Natural, environmental-friendly and low-cost nanomaterials for high-performance humidity sensor. Sens. Actuators B Chem. 2020, 317, 128204. [Google Scholar] [CrossRef]
- Mamat, M.H.; Ismail, A.S.; Parimon, N.; Vasimalai, N.; Abdullah, M.H.; Malek, M.F.; Yaakob, M.K.; Ahmad, M.K.; Nafarizal, N.; Suriani, A.B.; et al. Heterojunction of SnO2 nanosheet/arrayed ZnO nanorods for humidity sensing. Mater. Chem. Phys. 2022, 288, 126436. [Google Scholar] [CrossRef]
- Ismail, A.S.; Mamat, M.H.; Shameem Banu, I.B.; Amiruddin, R.; Malek, M.F.; Parimon, N.; Zoolfakar, A.S.; Md. Sin, N.D.; Suriani, A.B.; Ahmad, M.K.; et al. Structural modification of ZnO nanorod array through Fe-doping: Ramification on UV and humidity sensing properties. Nano Struct. Nano Objects 2019, 18, 100262. [Google Scholar] [CrossRef]
- Addabbo, T.; Cappelli, I.; Fort, A.; Mugnaini, M.; Panzardi, E.; Vignoli, V.; Viti, C. The Effect of Au Nanoparticle Addition on Humidity Sensing with Ultra-Small TiO2 Nanoparticles. Chemosensors 2021, 9, 170. [Google Scholar] [CrossRef]
- Subki, A.S.R.A.; Mamat, M.H.; Mohamed Zahidi, M.; Abdullah, M.H.; Shameem Banu, I.B.; Vasimalai, N.; Ahmad, M.K.; Nayan, N.; Abu Bakar, S.; Mohamed, A.; et al. Optimization of Aluminum Dopant Amalgamation Immersion Time on Structural, Electrical, and Humidity-Sensing Attributes of Pristine ZnO for Flexible Humidity Sensor Application. Chemosensors 2022, 10, 489. [Google Scholar] [CrossRef]
- Ismail, A.S.; Mamat, M.H.; Shameem Banu, I.B.; Malek, M.F.; Yusoff, M.M.; Mohamed, R.; Ahmad, W.R.W.; Abdullah, M.A.R.; Md. Sin, N.D.; Suriani, A.B.; et al. Modulation of Sn concentration in ZnO nanorod array: Intensification on the conductivity and humidity sensing properties. J. Mater. Sci. Mater. Electron. 2018, 29, 12076–12088. [Google Scholar] [CrossRef]
- Subki, A.S.R.A.; Mamat, M.H.; Musa, M.Z.; Abdullah, M.H.; Shameem Banu, I.B.; Vasimalai, N.; Ahmad, M.K.; Nafarizal, N.; Suriani, A.B.; Mohamad, A.; et al. Effects of varying the amount of reduced graphene oxide loading on the humidity sensing performance of zinc oxide/reduced graphene oxide nanocomposites on cellulose filter paper. J. Alloy. Compd. 2022, 926, 166728. [Google Scholar] [CrossRef]
- Lei, C.; Zhang, J.; Liang, T.; Liu, R.; Zhao, Z.; Xiong, J.; Yin, K. Humidity Sensor Based on rGO-SDS Composite Film. Micromachines 2022, 13, 504. [Google Scholar] [CrossRef]
Sample | XRD Angle, 2θ (º) | Interplanar Distance, dhkl (Å) | Lattice Parameter, a (Å) | Crystallite Size, D (nm) | Microstrain, ε (×10−3) |
---|---|---|---|---|---|
UTD | 26.85 | 3.32 | 4.691 | 47.1 | 1.017 |
TAFM-1 | 26.86 | 3.31 | 4.688 | 40.8 | 1.166 |
TAFM-3 | 26.84 | 3.32 | 4.692 | 25.8 | 1.857 |
TAFM-5 | 26.93 | 3.31 | 4.676 | 23.3 | 1.980 |
TAFM-7 | 27.16 | 3.28 | 4.638 | 23.0 | 1.852 |
TAFM-9 | 26.82 | 3.32 | 4.695 | 19.0 | 2.543 |
Sample | Sheet Resistance (Ω/cm2) | Carrier Concentration (cm−3) | Carrier Mobility (cm2/V·s) |
---|---|---|---|
UTD | 2.52 × 102 | 5.00 × 1018 | 6.35 × 102 |
TAFM-3 | 3.27 × 101 | 9.98 × 1018 | 1.92 × 103 |
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Mohamed Zahidi, M.; Mamat, M.H.; Subki, A.S.R.A.; Abdullah, M.H.; Hassan, H.; Ahmad, M.K.; Bakar, S.A.; Mohamed, A.; Ohtani, B. Formation of a Nanorod-Assembled TiO2 Actinomorphic-Flower-like Microsphere Film via Ta Doping Using a Facile Solution Immersion Method for Humidity Sensing. Nanomaterials 2023, 13, 256. https://doi.org/10.3390/nano13020256
Mohamed Zahidi M, Mamat MH, Subki ASRA, Abdullah MH, Hassan H, Ahmad MK, Bakar SA, Mohamed A, Ohtani B. Formation of a Nanorod-Assembled TiO2 Actinomorphic-Flower-like Microsphere Film via Ta Doping Using a Facile Solution Immersion Method for Humidity Sensing. Nanomaterials. 2023; 13(2):256. https://doi.org/10.3390/nano13020256
Chicago/Turabian StyleMohamed Zahidi, Musa, Mohamad Hafiz Mamat, A Shamsul Rahimi A Subki, Mohd Hanapiah Abdullah, Hamizura Hassan, Mohd Khairul Ahmad, Suriani Abu Bakar, Azmi Mohamed, and Bunsho Ohtani. 2023. "Formation of a Nanorod-Assembled TiO2 Actinomorphic-Flower-like Microsphere Film via Ta Doping Using a Facile Solution Immersion Method for Humidity Sensing" Nanomaterials 13, no. 2: 256. https://doi.org/10.3390/nano13020256
APA StyleMohamed Zahidi, M., Mamat, M. H., Subki, A. S. R. A., Abdullah, M. H., Hassan, H., Ahmad, M. K., Bakar, S. A., Mohamed, A., & Ohtani, B. (2023). Formation of a Nanorod-Assembled TiO2 Actinomorphic-Flower-like Microsphere Film via Ta Doping Using a Facile Solution Immersion Method for Humidity Sensing. Nanomaterials, 13(2), 256. https://doi.org/10.3390/nano13020256