Thermal Performance and Stability of Poly Si/Pt(Ni) Thin Film Temperature Sensors on GaAs

2001 ◽  
pp. 1468-1471 ◽  
Author(s):  
Tibor Lalinský ◽  
Pavol Hrkút ◽  
Ž. Mozolová ◽  
Tomáš Kovačik ◽  
Andrej Krajcer
2019 ◽  
Vol 147 ◽  
pp. 545-550 ◽  
Author(s):  
Shrutidhara Sarma ◽  
Ankit Goyal ◽  
Liang Gao ◽  
Xiaodong Niu ◽  
Akhil Garg ◽  
...  

Author(s):  
Nicola Lovecchio ◽  
Domenico Caputo ◽  
Giulia Petrucci ◽  
Augusto Nascetti ◽  
Marco Nardecchia ◽  
...  

2020 ◽  
Vol 12 (8) ◽  
pp. 1125-1129
Author(s):  
Shrutidhara Sarma

In depth understanding of resistivity of metals is of utmost importance for optimizing circuit designs and electrical systems. In this study, we investigated the relation between film thickness (in the range of 25−350 nm) and film resistivity of Cu thin films, with respect to thin film temperature sensors. The films were deposited in a vacuum deposition chamber over pyrex substrates and the film resistances were measured using 4 point probe technique. The empirical relationship established by Lacy has been used along with our experimental results in order to calculate the constants relating the filmsubstrate compatibility, which influences the change of resistivity with thickness.


2019 ◽  
Vol 9 (1) ◽  
Author(s):  
Satoshi Konishi ◽  
Akiya Hirata

Abstract The integration of a flexible temperature sensor with a soft microactuator (a pneumatic balloon actuator) for a functional microfinger is presented herein. A sensor integrated with a microactuator can actively approach a target for contact detection when a distance exists from the target or when the target moves. This paper presents a microfinger with temperature sensing functionality. Moreover, thermocouples, which detect temperature based on the Seebeck effect, are designed for use as flexible temperature sensors. Thermocouples are formed by a pair of dissimilar metals or alloys, such as copper and constantan. Thin-film metals or alloys are patterned and integrated in the microfinger. Two typical thermocouples (K-type and T-type) are designed in this study. A 2.0 mm × 2.0 mm sensing area is designed on the microfinger (3.0 mm × 12 mm × 400 μm). Characterization indicates that the output voltage of the sensor is proportional to temperature, as designed. It is important to guarantee the performance of the sensor against actuation effects. Therefore, in addition to the fundamental characterization of the temperature sensors, the effect of bending deformation on the characteristics of the temperature sensors is examined with a repeated bending test consisting of 1000 cycles.


Author(s):  
N. Madamopoulos ◽  
A. Tsigaraa ◽  
N. Vainos ◽  
E. Kaminska ◽  
A. Piotrowska ◽  
...  

2012 ◽  
Vol 12 (5) ◽  
pp. 1209-1213 ◽  
Author(s):  
Domenico Caputo ◽  
Giampiero de Cesare ◽  
Massimo Nardini ◽  
Augusto Nascetti ◽  
Riccardo Scipinotti

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