Fabrication of nanoplate resonating structures via micro-masonry

被引:10
作者
Bhaswara, A. [1 ,2 ]
Keum, H. [3 ]
Rhee, S. [3 ]
Legrand, B. [1 ,2 ]
Mathieu, F. [1 ,2 ]
Kim, S. [3 ]
Nicu, L. [1 ,2 ]
Leichle, T. [1 ,2 ]
机构
[1] CNRS, LAAS, F-31400 Toulouse, France
[2] Univ Toulouse, LAAS, F-31400 Toulouse, France
[3] Univ Illinois, Dept Mech Sci & Engn, Urbana, IL USA
基金
美国国家科学基金会;
关键词
micro-masonry; membrane resonator; silicon nanoplate; transfer printing; dynamic characterization; NEMS; PIEZOELECTRIC MEMBRANE; MEMS; BIOSENSOR; CANTILEVER; ACTUATORS; STABILITY; SENSORS; GROWTH; MODEL;
D O I
10.1088/0960-1317/24/11/115012
中图分类号
TM [电工技术]; TN [电子技术、通信技术];
学科分类号
0808 ; 0809 ;
摘要
Advantages of using nanoscale membrane and plate resonators over more common cantilever shapes include higher quality factor (Q factor) for an equivalent mass and better suitability to mass sensing applications in fluid. Unfortunately, the current fabrication methods used to obtain such membranes and plates are limited in terms of materials and thickness range, and can potentially cause stiction. This study presents a new method to fabricate nanoplate resonating structures based on micro-masonry, which is the advanced form of the transfer printing technique. Nanoplate resonators were fabricated by transfer printing 0.34 mu m thick square-shaped silicon plates by means of polydimethylsiloxane microtip stamps on top of silicon oxide base structures displaying 20 mu m diameter cavities, followed by a thermal annealing step to create a rigid bond. Typical resulting suspended structures display vibration characteristics, i.e. a resonance frequency of a few MHz and Q factors above 10 in air at atmospheric pressure, which are in accordance with theory. Moreover, the presented fabrication method enables the realization of multiple suspended structures in a single step and on the same single base, without mechanical crosstalk between the resonators. This work thus demonstrates the suitability and the advantages of the micro-masonry technique for the fabrication of plate resonators for mass sensing purpose.
引用
收藏
页数:8
相关论文
共 37 条
[1]   Approaching intrinsic performance in ultra-thin silicon nitride drum resonators [J].
Adiga, V. P. ;
Ilic, B. ;
Barton, R. A. ;
Wilson-Rae, I. ;
Craighead, H. G. ;
Parpia, J. M. .
JOURNAL OF APPLIED PHYSICS, 2012, 112 (06)
[2]   Modal dependence of dissipation in silicon nitride drum resonators [J].
Adiga, V. P. ;
Ilic, B. ;
Barton, R. A. ;
Wilson-Rae, I. ;
Craighead, H. G. ;
Parpia, J. M. .
APPLIED PHYSICS LETTERS, 2011, 99 (25)
[3]   Silicon-based micromembranes with piezoelectric actuation and piezoresistive detection for sensing purposes in liquid media [J].
Alava, T. ;
Mathieu, F. ;
Mazenq, L. ;
Soyer, C. ;
Remiens, D. ;
Nicu, L. .
JOURNAL OF MICROMECHANICS AND MICROENGINEERING, 2010, 20 (07)
[4]   Micromachined piezoelectric membranes with high nominal quality factors in newtonian liquid media: A Lamb's model validation at the microscale [J].
Ayela, Cedric ;
Nicu, Liviu .
SENSORS AND ACTUATORS B-CHEMICAL, 2007, 123 (02) :860-868
[5]   Energy transfer model for squeeze-film air damping in low vacuum [J].
Bao, MH ;
Yang, H ;
Yin, H ;
Sun, YC .
JOURNAL OF MICROMECHANICS AND MICROENGINEERING, 2002, 12 (03) :341-346
[6]   Squeeze film air damping in MEMS [J].
Bao, Minhang ;
Yang, Heng .
SENSORS AND ACTUATORS A-PHYSICAL, 2007, 136 (01) :3-27
[7]   Transfer Printing Techniques for Materials Assembly and Micro/Nanodevice Fabrication [J].
Carlson, Andrew ;
Bowen, Audrey M. ;
Huang, Yonggang ;
Nuzzo, Ralph G. ;
Rogers, John A. .
ADVANCED MATERIALS, 2012, 24 (39) :5284-5318
[8]   Biomolecular detection with a thin membrane transducer [J].
Cha, Misun ;
Shin, Jaeha ;
Kim, June-Hyung ;
Kim, Ilchaek ;
Choi, Junbo ;
Lee, Nahum ;
Kim, Byung-Gee ;
Lee, Junghoon .
LAB ON A CHIP, 2008, 8 (06) :932-937
[9]   Capacitive micromachined ultrasonic transducers: Theory and technology [J].
Ergun, AS ;
Yaralioglu, GG ;
Khuri-Yakub, BT .
JOURNAL OF AEROSPACE ENGINEERING, 2003, 16 (02) :76-84
[10]   Micromechanical oscillators as rapid biosensor for the detection of active growth of Escherichia coli [J].
Gfeller, KY ;
Nugaeva, N ;
Hegner, M .
BIOSENSORS & BIOELECTRONICS, 2005, 21 (03) :528-533