Hexagonal nanoplatelets of Ni–Mn oxide implanted reduced graphene oxide for high response in humidity sensing

被引:0
作者
Debabrata Nandi
Sabarish Radoor
Aswathy Jayakumar
Chandni Devi
Suchart Siengchin
机构
[1] King Mongkut’s University of Technology North Bangkok,Department of Mechanical and Production Engineering, The Sirindhorn International Thai–German Graduate School of Engineering (TGGS)
[2] King Mongkut’s University of Technology North Bangkok,Department of Materials and Process Engineering
[3] Jeonbuk National University,Department of Polymer
[4] Kyung Hee University,Nano Science and Technology
[5] Central University of Haryana,Department of Food and Nutrition
[6] King Mongkut’s University of Technology North Bangkok,Department of Physics and Astrophysics
来源
Chemical Papers | 2024年 / 78卷
关键词
Reduced graphene oxide; Ni–Mn oxide nanoplatelets; Wide humidity sensing range; High sensitivity; Grotthuss mechanism;
D O I
暂无
中图分类号
学科分类号
摘要
The hydrothermal synthetic approach was used to synthesize unique nanoplatelets of manganese(IV) nickel(II) oxide (NMN) and successively implanted into reduced graphene oxide to develop Ni–Mn oxide implanted reduced graphene oxide (NMNG). The Raman study, X-ray diffraction, transmission electron microscopy, energy dispersive X-ray spectroscopy, scanning electron microscopy, X-ray photoelectron spectroscopy, surface porosity study, etc., were used to explore its structure–property correlation. The humidity sensing performance of NMNG was assessed, and its sensing mechanism was explored. The higher concentration of H+ or H3O+ on the surface of NMNG showed higher conductivity and generated higher responses. Notably, RGO introduction can enhance sensor performance up to 100 times. The sensitivity of NMNG was greatly improved surpassing the most efficient humidity sensors. NMNG displayed excellent sensitivity and a fast recovery (5 s). Additionally, NMNG can proficiently sense humidity at a wide range of 8–81 relative humidity (RH)% which reveals its promising performance in support of nanoplatelets structure and highly accessible surface area of RGO.
引用
收藏
页码:3099 / 3110
页数:11
相关论文
共 318 条
[61]  
Wang R(2014) sensors Nanoscale 6 undefined-undefined
[62]  
Wang T(2009)Single wall carbon nanotube paper as anode for lithium-ion battery Nanotechnology 20 undefined-undefined
[63]  
Chen W(2005)Facile fabrication of flexible UV-cured polyelectrolyte-based coatings for humidity sensing Appl Surf Sci 242 undefined-undefined
[64]  
Gawande KB(2022)Hydrothermal synthesis and humidity sensing property of ZnO nanostructures and ZnO–In(OH) Angew Chem Int Ed 61 undefined-undefined
[65]  
Gawande SB(undefined) nanocomposites undefined undefined undefined-undefined
[66]  
Thakare SR(undefined)ZnO–TiO undefined undefined undefined-undefined
[67]  
Mate VR(undefined) nanocomposite: characterization and moisture sensing studies undefined undefined undefined-undefined
[68]  
Kadam SR(undefined)Humidity sensor based on poly(lactic acid)/PANI–ZnO composite electrospun fibers undefined undefined undefined-undefined
[69]  
Kale BB(undefined)High-sensitivity humidity sensor based on SnO undefined undefined undefined-undefined
[70]  
Kulkarni MV(undefined) nanoparticles synthesized by microwave irradiation method undefined undefined undefined-undefined