Feasible organic films using noninterfering emitters for sensitive and spatial high-temperature sensing?
Journal of Materials Chemistry C Pub Date: 2018-07-04 DOI: 10.1039/C8TC02591F
Abstract
Solid-state ratiometric thermometers for high-temperature and gradient thermosensing are important for industrial and scientific communities, but are difficult to fabricate. This is because the emission is always significantly quenched at high temperatures due to much facilitated nonradiative decay. Moreover, in mixtures of different-colored emissive species, inevitable energy transfer generally makes the distinction in thermal responses of the individual emitters much less marked. In this work, we have developed a feasible strategy to realize thermo-sensitive solid films for wide-range (?80 to 200 °C) and high temperature measurements, by blending a temperature inert blue emitter with a temperature-sensitive yellow emitter with a large Stokes shift. The minimum spectral overlap ensures the blocking of energy transfer, thus enabling these two emitters to exhibit their distinct thermal responses without significant mutual influences. Due to the thermally-populated bright local excited state in the blue emitter, the temperature sensitivity abnormally increases with an increase of temperature. The relative sensitivity is higher than 1% K?1 when the film is heated to over 362 K, reaching a maximum of 6.32% K?1 at 440 K. More importantly, the films exhibit good thermo-mapping and reversible sensing capabilities in ambient atmosphere, indicating great potential for low-cost, robust, large-area and gradient wide range and high-temperature thermometers.
Recommended Literature
- [1] Excited state dynamics of symmetric and asymmetric Cr3(dpa)4Cl2 measured using femtosecond transient absorption spectroscopy? Chao-Han Cheng,Wen-Zhen Wang,Shie-Ming Peng,I-Chia ChenPhys. Chem. Chem. Phys., 2017,19, 25471-25477 10.1039/C7CP03968A
- [2] Emerging investigator series: first-principles and thermodynamics comparison of compositionally-tuned delafossites: cation release from the (001) surface of complex metal oxides? Joseph W. Bennett,Diamond T. Jones,Blake G. Hudson,Joshua Melendez-Rivera,Robert J. Hamers,Sara E. MasonEnviron. Sci.: Nano, 2020,7, 1642-1651 10.1039/C9EN01304K
- [3] Enabling high-throughput single-animal gene-expression studies with molecular and micro-scale technologies Jason WanLab Chip, 2020,20, 4528-4538 10.1039/D0LC00881H
- [4] Fe/Fe3C@C nanoparticles encapsulated in N-doped graphene–CNTs framework as an efficient bifunctional oxygen electrocatalyst for robust rechargeable Zn–air batteries? Zhiyan Chen,Nan Wu,Yaobing Wang,Bing Wang,Yingde WangJ. Mater. Chem. A, 2018,6, 516-526 10.1039/C7TA08423D
- [5] Excellent energy storage performance in NaNbO3-based relaxor antiferroeic ceramics under a low electric field XuxinCheng,XiaomingChen,PengyuanFan 10.1007/s10832-022-00283-w
- [6] Excellent humidity sensor based on ultrathin HKUST-1 nanosheets? Qiaoe Wang,Meiling Lian,Xiaowen Zhu,Xu ChenRSC Adv., 2021,11, 192-197 10.1039/D0RA08354B
- [7] Fe3O4 nanosphere@microporous organic networks: enhanced anode performances in lithium ion batteries through carbonization? Byungho Lim,Jaewon Jin,Jin Yoo,Seung Yong Han,Kyeongyeol Kim,Sungah Kang,Nojin Park,Sang Moon Lee,Hae Jin Kim,Seung Uk SonChem. Commun., 2014,50, 7723-7726 10.1039/C4CC02068E
- [8] Exceptional activity of sub-nm Pt clusters on CdS for photocatalytic hydrogen production: a combined experimental and first-principles study? Qiyuan Wu,Shangmin Xiong,Peichuan Shen,Shen Zhao,Alexander OrlovCatal. Sci. Technol., 2015,5, 2059-2064 10.1039/C4CY01563K
- [9] Evolution of calcium phosphate precipitation in hanging drop vapor diffusion by in situRaman microspectroscopy Gloria Belén Ramírez-Rodríguez,José Manuel Delgado-López,Jaime Gómez-MoralesCrystEngComm, 2013,15, 2206-2212 10.1039/C2CE26556G
- [10] Examination of the hydrogen-bonding networks in small water clusters (n = 2–5, 13, 17) using absolutely localized molecular orbital energy decomposition analysis? Erika A. Cobar,Paul R. Horn,Robert G. Bergman,Martin Head-GordonPhys. Chem. Chem. Phys., 2012,14, 15328-15339 10.1039/C2CP42522J
Journal Name:Journal of Materials Chemistry C
research_products
-
CAS no.: 89640-58-4