化学镀镍及FBG温度传感器的电镀

IF 3.1 4区 化学 Q2 CHEMISTRY, MULTIDISCIPLINARY Chemical Research in Chinese Universities Pub Date : 2008-09-01 DOI:10.1016/S1005-9040(08)60133-6
Ren-sheng SHEN , Rui TENG , Xiang-ping LI , Jin ZHANG , Dao-cheng XIA , Zhao-qi FAN , Yong-sen YU , Yu-shu ZHANG , Guo-tong DU
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引用次数: 5

摘要

采用化学镀镍和镀锡两种方法,在普通裸光纤光栅表面制备了金属涂层光纤光栅温度传感器。在金相显微镜下观察了金属涂层的表面形貌。分析了预处理顺序、EN镀液pH值和电镀电流密度对镀层性能的影响。同时,利用光谱分析仪对温度引起的Bragg波长移进行了监测。金属涂层光纤光栅(MFBG)传感器的灵敏度几乎是普通裸光纤光栅传感器的两倍。MFBG传感器的测量温度可达280℃,大大优于传统的FBG传感器。
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Electroless Nickel Plating and Electroplating on FBG Temperature Sensor

Metal-coated fiber Bragg grating(FBG) temperature sensors were prepared via electroless nickel(EN) plating and tin electroplating methods on the surface of normal bare FBG. The surface morphologies of the metal-coated layers were observed under a metallographic microscope. The effects of pretreatment sequence, pH value of EN plating solution and current density of electroplating on the performance of the metal-coated layers were analyzed. Meanwhile, the Bragg wavelength shift induced by temperature was monitored by an optical spectrum analyzer. Sensitivity of the metal-coated FBG(MFBG) sensor was almost two times that of normal bare FBG sensor. The measuring temperature of the MFBG sensor could be up to 280 °C, which was much better than that of conventional FBG sensor.

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来源期刊
CiteScore
5.30
自引率
6.50%
发文量
152
审稿时长
3.0 months
期刊介绍: The journal publishes research articles, letters/communications and reviews written by faculty members, researchers and postgraduates in universities, colleges and research institutes all over China and overseas. It reports the latest and most creative results of important fundamental research in all aspects of chemistry and of developments with significant consequences across subdisciplines. Main research areas include (but are not limited to): Organic chemistry (synthesis, characterization, and application); Inorganic chemistry (bio-inorganic chemistry, inorganic material chemistry); Analytical chemistry (especially chemometrics and the application of instrumental analysis and spectroscopy); Physical chemistry (mechanisms, catalysis, thermodynamics and dynamics); Polymer chemistry and polymer physics (mechanisms, material, catalysis, thermodynamics and dynamics); Quantum chemistry (quantum mechanical theory, quantum partition function, quantum statistical mechanics); Biochemistry; Biochemical engineering; Medicinal chemistry; Nanoscience (nanochemistry, nanomaterials).
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