Proximity effect in quartz crystal microbalance

被引:14
作者
Yu, George Y. [2 ]
Janata, Jiri [1 ]
机构
[1] Georgia Inst Technol, Sch Chem & Biochem, Atlanta, GA 30332 USA
[2] Georgia Inst Technol, Sch Elect & Comp Engn, Atlanta, GA 30332 USA
关键词
D O I
10.1021/ac7022519
中图分类号
O65 [分析化学];
学科分类号
070302 ; 081704 ;
摘要
When an object approaches a vibrating quartz crystal microbalance (QCM) the resonant frequency changes. This "proximity effect" was seen at the distance of 10 mm. in air and became more pronounced as the distance decreased. This effect depends on the quality factor (Q-factor) value of a QCM, conductivity of the object, and electrical connection of the object to QCM electrodes. A special setup was constructed to test the impact of the proximity effect on a QCM. Damping fluid was placed on one side of QCM, to change the Q-factor. A conducting metal disk was brought close to the other side of the QCM exposed to air. By varying the distance between the QCM and an object (metal disk), a shift in frequency was observed. This proximity effect was largest (> 200 Hz for 10 MHz QCM) when the Q-factor was low and a conducting metal disk (e.g., Cu) was electrically shorted to the proximal (nearest) QCM electrode. The finite element modeling showed that the proximity effect was likely due to interaction of the object with the hinging electromagnetic field of the QCM. A simple modified Butterworth Van-Dyke model was used to describe this effect. It must be recognized that this effect may lead to large experimental artifacts in a variety of analytical QCM applications where the Q-factor changes. Therefore, in order to avoid artifacts, QCM and similar mass acoustic devices should not operate in the low Q-factor (< 1000) regime.
引用
收藏
页码:2751 / 2755
页数:5
相关论文
共 11 条
[1]  
CHEN Z, 1998, IEEE T IND ELECTRON, V45, P6
[2]   Influence of roughness on the admittance of the quartz crystal microbalance immersed in liquids [J].
Daikhin, L ;
Gileadi, E ;
Katz, G ;
Tsionsky, V ;
Urbakh, M ;
Zagidulin, D .
ANALYTICAL CHEMISTRY, 2002, 74 (03) :554-561
[3]   DUAL QUARTZ-CRYSTAL MICROBALANCE [J].
DUNHAM, GC ;
BENSON, NH ;
PETELENZ, D ;
JANATA, J .
ANALYTICAL CHEMISTRY, 1995, 67 (02) :267-272
[4]   Progress and recent realizations of miniaturized inductive proximity sensors for automation [J].
Jagiella, Manfred ;
Fericean, Sorin ;
Dorneich, Albert .
IEEE SENSORS JOURNAL, 2006, 6 (06) :1734-1741
[5]  
JANSHOLF A, 2000, ANGEW CHEM INT ED
[6]  
JOSSE F, 1992, P IEEE ULTRASON S, V1, P289
[7]   QCM operation in liquids: An explanation of measured variations in frequency and Q factor with liquid conductivity [J].
Rodahl, M ;
Hook, F ;
Kasemo, B .
ANALYTICAL CHEMISTRY, 1996, 68 (13) :2219-2227
[8]   VERWENDUNG VON SCHWINGQUARZEN ZUR WAGUNG DUNNER SCHICHTEN UND ZUR MIKROWAGUNG [J].
SAUERBREY, G .
ZEITSCHRIFT FUR PHYSIK, 1959, 155 (02) :206-222
[9]   QUARTZ-CRYSTAL RESONATORS AS SENSORS IN LIQUIDS USING THE ACOUSTOELECTRIC EFFECT [J].
SHANA, ZA ;
JOSSE, F .
ANALYTICAL CHEMISTRY, 1994, 66 (13) :1955-1964
[10]   PERTURBATION OF THE ELECTRIFIED INTERFACE AND THE RESPONSE OF THE THICKNESS-SHEAR MODE ACOUSTIC-WAVE SENSOR UNDER CONDUCTIVE LIQUID LOADING [J].
YANG, MS ;
THOMPSON, M .
ANALYTICAL CHEMISTRY, 1993, 65 (24) :3591-3597