IP Library Granted Patent US 12,306,136
Granted Patent B2
US 12,306,136 · App. 17/422,131 · Granted May 20, 2025

Sensorized device for the analysis of a fluid by means of acoustic waves

Inventors: Matteo Agostini (Pisa, IT); Marco Cecchini (Calci, IT)
Assignee: INTA SRL
G01N29/022G01N29/036G01N29/222G01N2291/014G01N2291/0256G01N2291/0423
View Patent ↗
Loading inventors, assignments & file history…
Monitor This Case
Get email alerts when status or documents change.
Order Certified Copies
Most orders are placed with the USPTO same day — all within 24 business hours.
Order via The Patent Place →
Pre-filled with this patent's details
Quick Facts
Patent No.
US 12,306,136
App. No.
17/422,131
Granted
May 20, 2025
Kind
B2
Abstract

A method for the detection of analytes within a fluid, said method comprising the steps of prearranging a sensorized device ( 100 ) comprising at least one SAW sensor ( 110 ), said or each SAW sensor ( 110 ) comprising a substrate ( 115 ) having an outer surface ( 115 ′), at least one emitting interdigital transducer ( 111 ) and at least one reflector electrode ( 112 ). There are then the steps of adsorbing a plurality of probe molecules, sending n input electric signals, having respective frequencies f i , and subsequent transmission of at least one surface acoustic wave, reflecting by said or each reflector electrode ( 112 ) of said or each surface acoustic wave emitted, identifying at least one resonance frequency f r , conveying said fluid on said outer surface ( 115 ′), removal of said fluid by said outer surface ( 115 ′), verifying a possible change of value of at least one resonance frequency f r previously identified.

Claims (30)

1. A method for the detection of analytes within a fluid, said method comprising the steps of:

prearranging a sensorized device ( 100 ) comprising at least two SAW sensors ( 110 ), each of said at least two SAW sensors ( 110 ) comprising:

a substrate ( 115 ) having an outer surface ( 115 ′) comprising at least one piezoelectric portion;

at least one emitting interdigital transducer ( 111 ) arranged on said piezoelectric portion of said outer surface ( 115 ′), said emitting interdigital transducer ( 111 ) arranged to emit a surface acoustic wave in response to an input electric signal;

at least one reflector electrode ( 112 ) arranged on said outer surface ( 115 ′), said reflector electrode ( 112 ) arranged to reflect said acoustic wave towards said emitting interdigital transducer ( 111 ); and

an auxiliary interdigital transducer ( 120 );

adsorbing a plurality of probe molecules on each of said at least one emitting interdigital transducer ( 111 ) and/or on each of said at least one reflector electrode ( 112 );

sending n input electric signals, having respective frequencies f i , with i=1, . . . , n, to said at least one emitting interdigital transducer ( 111 ) and subsequent transmission by each of said at least one emitting interdigital transducer ( 111 ) of at least one surface acoustic wave;

reflecting by each of said at least one reflector electrode ( 112 ) each of said at least one emitted surface acoustic wave;

identifying, between said n frequencies f i of said input electric signals, at least one resonance frequency f r , corresponding to the generation of a surface acoustic wave having power exceeding a predetermined threshold P T ;

conveying said fluid on said outer surface ( 115 ′) and/or on each of said at least one emitting interdigital transducer ( 111 ) and/or on each of said at least one reflector electrode ( 112 );

transmission, by said auxiliary interdigital transducer ( 120 ), of a surface acoustic wave having frequency ft for introducing turbulence in said fluid;

removing said fluid by said outer surface ( 115 ′) and/or by each of said at least one emitting interdigital transducer ( 111 ) and/or by each of said at least one reflector electrode ( 112 ); and

verifying a possible change of value of at least one resonance frequency fr previously identified;

wherein each of said at least two SAW sensors ( 110 ) is a R-SAW sensor adapted to generate Rayleigh surface acoustic waves,

wherein said sensorized device ( 100 ) comprises a control unit configured to reduce noise based on a comparison of the surface acoustic waves reflected by each of said at least one reflector electrode ( 112 ) of said at least two SAW sensors ( 110 ), said surface acoustic waves reflected by each of said at least one reflector electrode ( 112 ) having the same wavelength.

2. The method for the detection of analytes within a fluid, according to claim 1 , wherein said frequencies f i of said n surface acoustic waves emitted by said at least one emitting interdigital transducer ( 111 ) are greater than 800 MHZ, whereas said frequency f t emitted by said auxiliary interdigital transducer ( 120 ) is less than 800 MHz.

3. The method for the detection of analytes within a fluid, according to claim 1 , wherein said sensorized device ( 100 ) comprises at least one microfluidic channel ( 130 ) arranged to convey said fluid along a predetermined path on said outer surface ( 115 ′), in order to contain said fluid in a minimum volume where said detection of analytes is carried out.

4. The method for the detection of analytes within a fluid, according to claim 1 , wherein said piezoelectric portion of said substrate ( 115 ) is made of Lithium niobate.

5. The method for the detection of analytes within a fluid, according to claim 1 , wherein there is a step of defining at least two resonance frequencies f r .

6. A sensorized device ( 100 ) for the detection of analytes within a fluid, said sensorized device ( 100 ) comprising at least two SAW sensors ( 110 ), each of said at least two SAW sensors ( 110 ) comprising:

a substrate ( 115 ) having an outer surface ( 115 ′) comprising at least one piezoelectric portion;

an emitting interdigital transducer ( 111 ) arranged on said outer surface ( 115 ′), said emitting interdigital transducer ( 111 ) arranged to emit a surface acoustic wave in response to an input electric signal;

at least one reflector electrode ( 112 ) arranged on said outer surface ( 115 ′), said reflector electrode ( 112 ) arranged to reflect said acoustic wave towards said emitting interdigital transducer ( 111 ); and

an auxiliary interdigital transducer ( 120 ) arranged to emit a surface acoustic wave having frequency ft for introducing turbulence in said fluid;

wherein each of said at least one SAW sensor ( 110 ) is a R-SAW sensor adapted to generate Rayleigh surface acoustic waves,

wherein each of said at least one SAW sensor is configured to adsorb a plurality of probe molecules on said emitting interdigital transducer ( 111 ) and/or on said at least one reflector electrode ( 112 );

wherein the sensorized device further comprises a control unit, said control unit is configured to reduce noise by comparing the surface acoustic waves reflected by each of said at least one reflector electrode ( 112 ) of each of said at least two SAW sensors ( 110 ), said surface acoustic waves reflected by each of said at least one reflector electrode ( 112 ) having the same wavelength.

7. The sensorized device ( 100 ), according to claim 6 , wherein said frequencies f i of said n surface acoustic waves emitted by said emitting interdigital transducer ( 111 ) are greater than 800 MHz, whereas said frequency f t emitted by said auxiliary interdigital transducer ( 120 ) is less than 800 MHz.

8. The sensorized device ( 100 ), according to claim 6 , wherein at least one microfluidic channel ( 130 ) is also provided arranged to convey said fluid along a predetermined path on said outer surface ( 115 ′), in order to contain said fluid in a minimum volume where said analysis is carried out.

Assignments (1)
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Jul 12, 2021
From: AGOSTINI, MATTEO; CECCHINI, MARCO
To: INTA SRL
Reel/Frame 056825/0867 →
Priority Claims (1)
IT 102019000000418 · Jan 10, 2019 · national
Continuity (1)
Related Publication 20220128511A1 · Apr 28, 2022
References Cited (12)
US 5571944A · Pfeifer · 1996 [cited by examiner]
US 6293136B1 · Kim · 2001 [cited by examiner]
US 7398685B2 · Itoh · 2008 [cited by examiner]
US 7500379B2 · Hines · 2009 [cited by examiner]
US 7942568B1 · Branch · 2011 [cited by examiner]
US 8658097B2 · Okaguchi · 2014 [cited by examiner]
US 9726646B1 · Brocato · 2017 [cited by examiner]
US 10031140B1 · Richardson · 2018 [cited by examiner]
US 20040101975A1 · Gauer · 2004 [cited by applicant]
US 20060049714A1 · Liu · 2006 [cited by examiner]
US 20090282902A1 · Warthoe · 2009 [cited by examiner]
A Rayleigh surface acoustic wave (R-SAW) resonator biosensor based on poistive and negative reflectors with sub-nanomolar limit of detection by Agostini et al., Sensors and Actuators B 254 (2018) 1-7; published online o… [cited by examiner]