IP Library › Granted Patent US 12,699,041
Granted Patent B2
US 12,699,041 · App. 18/422,938 · Granted Aug 4, 2026

Apparatus for variable temperature infrared spectroscopy with a button sample holder

Inventor: Robert L. White (Norman, OK)
Assignee: The Board of Regents of the University of Oklahoma
G01N21/0332G01N21/35
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Quick Facts
Patent No.
US 12,699,041
App. No.
18/422,938
Filed
Jan 25, 2024
Granted
Aug 4, 2026
Kind
B2
Examiner
RAHMAN, MD M
Art Unit
2877
USPC
356/244
Abstract

A variable temperature IR spectroscopy sample system includes a button sample holder and temperature control support assembly. The button sample holder may include a mesh sample retainer attached within a recess of a sample plate. A thermocouple can be used to determine the temperature of the mesh sample retainer. The temperature control support assembly is configured to support the button sample holder within the infrared spectrophotometer while controlling and adjusting the temperature of the sample contained within the button sample holder. The temperature control support assembly includes a thermoelectric module, generally comprising one or more thermoelectric chips (TECs), that is configured to selectively adjust the temperature of the button sample holder. The temperature control support assembly can also include a liquid coolant system to remove heat generated by the thermoelectric module and to maintain the temperature control support assembly at a relatively constant or ambient temperature.

Claims (50)

1 . A test sample system for carrying out a testing protocol on a sample at one or more temperatures within a spectrophotometer, the system comprising:

a button sample holder configured to hold the sample during the testing protocol,

wherein the button sample holder further comprises:

a mesh sample retainer, wherein the mesh sample retainer comprises:

a mesh disc configured to retain the sample;

a backing member; and

a thermocouple connected to the backing member and configured to measure the temperature of the sample in the mesh disc; and

a sample plate, wherein the sample plate comprises a mesh sample container recess that is configured to receive the mesh sample retainer such that a top surface of the mesh disc is substantially flush with a top surface of the sample plate; and

a temperature control support assembly for supporting the button sample holder and controlling the temperature of the sample in the button sample holder, wherein the temperature control support assembly comprises:

a thermoelectric heat transfer system comprising at least one thermoelectric chip (TEC) in direct contact with the sample plate of the button sample holder; and

a liquid cooling system.

2 . The test sample system of claim 1 , wherein the liquid cooling system comprises a cooling block and wherein the at least one TEC is mounted on the cooling block.

3 . The test sample system of claim 2 , wherein the liquid cooling system further comprises:

a recirculating chiller for chilling a coolant liquid;

an inlet for delivering the coolant liquid from the recirculating chiller to the cooling block; and

an outlet for delivering the coolant liquid from the cooling block to the recirculating chiller.

4 . The test sample system of claim 1 , wherein the mesh sample retainer recess has approximately the same diameter as the mesh sample retainer.

5 . The test sample system of claim 1 , wherein the thermoelectric heat transfer system comprises at least two TECs.

6 . A test sample system for carrying out a testing protocol on a sample at one or more temperatures within a spectrophotometer, the system comprising:

a button sample holder configured to hold the sample during the testing protocol,

wherein the button sample holder further comprises:

a mesh sample retainer, wherein the mesh sample retainer comprises:

a mesh disc configured to retain the sample;

a backing member; and

a thermocouple connected to the backing member and configured to measure the temperature of the sample in the mesh disc; and

a sample plate, wherein the sample plate comprises a mesh sample container recess that is configured to receive the mesh sample retainer such that a top surface of the mesh disc is substantially flush with a top surface of the sample plate; and

a temperature control support assembly for supporting the button sample holder and controlling the temperature of the sample in the button sample holder, wherein the temperature control support assembly comprises:

a thermoelectric heat transfer system comprising two or more thermoelectric chips (TECs), wherein at least one of the two or more TECs is in contact with the sample plate of the button sample holder; and

a liquid cooling system.

7 . The test sample system of claim 6 , wherein the thermoelectric heat transfer system comprises:

a first TEC in contact with the button sample holder; and

a second TEC in planar contact with the first TEC.

8 . The test sample system of claim 7 , wherein the temperature control support assembly further comprises a housing for retaining the first and second TECs.

9 . The test sample system of claim 8 , wherein the housing comprises:

a first plate that includes a first chamber configured to retain the first TEC and an upper portion of the second TEC;

a second plate that includes a second chamber configured to retain a lower portion of the second TEC; and

a cover plate connected to the first plate, wherein the cover plate includes a button aperture sized to allow the button sample holder to be placed in direct contact with the first TEC.

10 . The test sample system of claim 9 , wherein the second plate further comprises a coolant reservoir under the second TEC.

11 . The test sample system of claim 9 , wherein the housing further comprises an o-ring seal between the cover plate and the first TEC.

12 . A method for the variable temperature infrared spectroscopy analysis of a test sample using a spectrophotometer, the method comprising the steps of:

loading the sample in a button sample holder that includes a mesh sample retainer and sample plate, wherein the mesh sample retainer further includes a mesh disc configured to retain the sample, a backing member, and a thermocouple connected to the backing member and configured to measure the temperature of the sample in the mesh disc, and wherein the sample plate comprises a mesh sample container recess that is configured to receive the mesh sample retainer such that a top surface of the mesh disc is substantially flush with a top surface of the sample plate;

placing the loaded button sample holder onto a temperature control support assembly that includes a thermoelectric heat transfer system that includes at least one thermoelectric chip (TEC) such that that TEC is in direct contact with the sample plate of the button sample holder;

placing the loaded button sample holder and temperature control support assembly into the spectrophotometer;

changing the temperature of the sample to a setpoint temperature with a thermoelectric chip in the temperature control support assembly; and

taking a measurement with the spectrophotometer of the sample at the setpoint temperature.

13 . The method of claim 11 , further comprising the step of cooling the temperature control support assembly with a liquid cooling system.

14 . The method of claim 11 , further comprising the steps of:

changing the temperature of the sample to a second setpoint temperature with the thermoelectric chip in the temperature control support assembly; and

taking a second measurement with the spectrophotometer of the sample at the second setpoint temperature.

15 . The method of claim 14 , further comprising the step of selecting the first setpoint temperature and the second setpoint temperature to accomplish measurements for a linear, cyclic, exponential or stepped temperature profile.

Assignments (1)
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Apr 28, 2026
From: WHITE, ROBERT L.
To: THE BOARD OF REGENTS OF THE UNIVERSITY OF OKLAHOMA
Reel/Frame 074502/0348 →
Continuity (2)
Provisional Application 63440944 · Jan 25, 2023
Related Publication 20240248024A1 · Jul 25, 2024
References Cited (24)
US 5470757A · Gagnon et al. · 1995 [cited by applicant]
US 5519218A · Chang · 1996 [cited by applicant]
US 5723341A · Truett · 1998 [cited by applicant]
US 5764355A · Gagnon et al. · 1998 [cited by applicant]
US 6280690B1 · Tadion · 2001 [cited by applicant]
US 11047796B2 · White · 2021 [cited by applicant]
US 20040251414A1 · Rodewald · 2004 [cited by applicant]
US 20160054343A1 · Holmes · 2016 [cited by examiner]
US 20190226910A1 · Messerschmidt et al. · 2019 [cited by applicant]
US 20200088646A1 · Harris et al. · 2020 [cited by applicant]
US 20220107265A1 · Gussakovsky · 2022 [cited by examiner]
“Real-Time Monitoring of Polymer Heat Curing By Diamond ATR Spectroscopy”, Harrick Scientific Products, Inc. (2021). Real-Time Monitoring of Polymer Heat curing by Diamond ATR Spectroscopy. In Application Note (Report N… [cited by applicant]
“Golden Gate High Temperature Heated Diamond ATR Top Plate”, ManualsLib. (Aug. 10, 2022). SPECAC Golden Gate User Manual PDF download. https://www.manualslib.com/manual/2588579/Specac-Golden-Gate.html. [cited by applicant]
“VeeMAX III”, VeeMAX III—PIKE Technologies. (n.d.). https://www.piketech.com/product/sr-veemax/. [cited by applicant]
“Agilent 4300 Handheld FTIR with MCT Detector”, Agilent Technologies; “Agilent 4300 Handheld FTIR with MCT Detector”; Mar. 2014; 2 pages. [cited by applicant]
“Advances in Handheld FTIR Chemical Identification for Counter Terrorism and Defence”, Arno, Josep, et al.; “Advances in Handheld FTIR Chemical Identification for Counter Terrorism and Defence”; 2013; 6 pages. [cited by applicant]
“FTIR Compact & Portable Systems—4300 Handheld FTIR”, Agilent Technologies; “FTIR Compact & Portable Systems—4300 Handheld FTIR”; Mar. 2014; 6 pages. [cited by applicant]
“An Investigation into the Role of Portable Attenuated Total Reflectance Fourier Transform Infra Red Spectroscopy in the Presumptive Testing of Illicit Drugs”, Litauszki, Greta; “An Investigation into the Role of Portab… [cited by applicant]
“Analysis of Soil in the Field using portable FTIR”, Robertson, A. H. Jean, et al.; “Analysis of Soil in the Field Using Portable FTIR”; International Workshop “Soil Spectroscopy: The Present and Future of Soil Monitori… [cited by applicant]
“Alpha II FTIR Spectrometers”, Bruker; “Alpha II FTIR Spectrometers—Technical Details”; Dec. 4, 2013; 5 pages. [cited by applicant]
“Tensor II”, Bruker; “Tensor II FTIR Spectrometer—Overview”; Oct. 2015; 4 pages. [cited by applicant]
“Portable Infrared Spectroscopy Chemical Detectors Assessment Report”, U.S. Department of Homeland Security; “Portable Infrared Spectroscopy Chemical Detectors Assessment Report”; Jun. 2016; 36 pages. [cited by applicant]
“FT-IR Spectroscopy Attenuated Total Reflectance (ATR)”, Perkinelmer, Inc.; “FT-IR Spectroscopy Attenuated Total Reflectance (ATR)”; Sep. 22, 2004; 5 pages. [cited by applicant]
“Rapid Detection of Counterfeit Drugs of Ethambutol Hydrochloride and Cefuroxime Axetil using Handheld Raman, Near Infrared and Portable FTIR Technologies”, Huong Le T. T., et al.; “Rapid Detection of Counterfeit Drugs … [cited by applicant]