GB2379024A - Calorimeter using a thermistor device - Google Patents

Calorimeter using a thermistor device Download PDF

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Publication number
GB2379024A
GB2379024A GB0216501A GB0216501A GB2379024A GB 2379024 A GB2379024 A GB 2379024A GB 0216501 A GB0216501 A GB 0216501A GB 0216501 A GB0216501 A GB 0216501A GB 2379024 A GB2379024 A GB 2379024A
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United Kingdom
Prior art keywords
thermistor
accordance
calorimeter
thermistors
preamplifier
Prior art date
Legal status (The legal status is an assumption and is not a legal conclusion. Google has not performed a legal analysis and makes no representation as to the accuracy of the status listed.)
Granted
Application number
GB0216501A
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GB2379024B (en
GB0216501D0 (en
Inventor
John Gerard Whateley
Gareth Bray
Brian Marshall
Current Assignee (The listed assignees may be inaccurate. Google has not performed a legal analysis and makes no representation or warranty as to the accuracy of the list.)
GE Healthcare UK Ltd
Original Assignee
Amersham Biosciences UK Ltd
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Filing date
Publication date
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Publication of GB0216501D0 publication Critical patent/GB0216501D0/en
Publication of GB2379024A publication Critical patent/GB2379024A/en
Application granted granted Critical
Publication of GB2379024B publication Critical patent/GB2379024B/en
Anticipated expiration legal-status Critical
Expired - Fee Related legal-status Critical Current

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Classifications

    • GPHYSICS
    • G01MEASURING; TESTING
    • G01KMEASURING TEMPERATURE; MEASURING QUANTITY OF HEAT; THERMALLY-SENSITIVE ELEMENTS NOT OTHERWISE PROVIDED FOR
    • G01K17/00Measuring quantity of heat

Abstract

A calorimeter 1 comprises a sample chamber 7 which contains a detector means 11 for producing an output signal representing the change in temperature in the chamber. The detector means 11 may comprise a pair of thermistors 13a, 13b in a bridge arrangement. Thermistor 13a is a measuring thermistor and 13b is a reference. The thermistors are connected to a preamplifier 19 and power amplifier 21. To reduce self-heating of the measurement thermistor, current is supplied to it intermittently e.g. for a few milliseconds every tenth of a second. This improves the sensitivity of the calorimeter and allows very small changes in temperature to be detected e.g. in biochemical reactions. The preamplifier and thermistors may be integrated onto a silicon or plastic substrate. A second aspect of the invention is also disclosed that forms a plurality of sample-receiving wells on a substrate, each well having its own thermistor.

Description

t. À À - -
Thermocouple device Field of the Invention
The present invention relates to thermistor devices and methods for measuring heat using said devices. Prior Art
0 Thermistors are devices used to measure temperatures. A thermistor is a semiconductor component that exhibits large changes in resistance with temperature. Typically the changes of resistance are of the order of several hundred ohms per degree Centigrade with a nominal resistance of, for example, 100,000 Ohms at 25 C. Measuring the change of resistance of a thermistor therefore gives a measure of a change of temperature of the thermistor.
Detectors such as thermistors are often used to measure changes of temperatures that occur in calorimeters. In microcalorimetry, respectively nanocalorimetry, small quantities of chemicals are reacted in a sample holder in a calorimeter and heat energy in the order of microcalories, resp. nanocalories, is emitted or absorbed. The resulting temperature changes can be measured 20 by measuring the change in the resistance of a thermistor. Normally the signals from the thermistors are amplified before being measured.
In prior art microcalorimetry and nanocalorimetry devices the thermistor is attached to, or
inserted into, the sample holder and thus measures the temperature change of the reagents, 25 sample holder and itself. A problem is that the quantity of heat energy liberated or absorbed in a reaction is very small and the resulting change of temperature is equally small. Thermistors also warm up during use and this self-heating adds to the temperature changes experienced by the thermistors. This means that the signal is often difficult to detect as it can be submerged in background noise picked up on the wires leading to the amplifier and the self-heating of the
30 thermistors. A method of reducing this noise is to enclose the calorimeter, wires and amplifier by a Faraday cage. This however is undesirable as it restricts assess to the calorimeter and increases the costs of the apparatus. Methods of reducing the effects of self-heating can include using a compensating signal from reference thermistors that is similar to the
2 -. .
measuring thermistor and which is assumed to have the same self-heating effect as the measuring thermistor to compensate for the self-heating.
Summary of the Invention
According to the present invention, at least some of the problems with the prior art are solved
by means of a device having the features present in the characterising part of claim 1 and a method having the features mentioned in the characterising part of claim.
lo Brief Description of the Figures
Figure 1 shows schematically a first embodiment of a device for measuring small temperature changes in accordance with the present invention; Figure 2 shows an example of a circuit suitable for use with the device of figure 1; and, Figure 3 shows schematically a second embodiment of a device for measuring small temperature changes in accordance with the present invention.
Detailed Description of Embodiments Illustrating the Invention
Figure 1 shows schematically a first embodiment of a device l in accordance with the present invention for measuring small temperature changes. Device 1 comprises a sample holder 3 that is intend to contain a sample 5, the temperature changes of which are to be measured.
Sample holder 3 is positioned inside a chamber 7 in an insulated calorimeter 8. Chamber 7 is 25 provided with an access port, for example a removable lid 9, in order to allow access to the chamber 7. Sample holder 3 is provided with detector means 11 for producing an output signal SOUL in response to changes in its temperature. In this embodiment detector means 11 comprises a plurality of thermistors 1 3a, 1 3b, arranged in a thermistor bridge, with one thermistor 1 3a being used as a sensing thermistor to register temperature changes while 30 another thermistor 13b is used as a reference thermistor in order to establish a reference signal. The thermistors are preferably of the R-T curve matched type. The thermistors 1 3a-
13b are connected to an amplifier circuit 17 shown enclosed by dashed lines in figure 1. The amplifier circuit 17 is built in two parts, a preamplifier 19, local to the sensing thermistor
be: À- À: . 1 3a, is mounted in said calorimeter chamber 7. The other part of the amplifier circuit 17 comprises a power amplifier 21, and power supply components 23, these are preferably arrange remotely, for example in or near a remotely positioned control unit 25.
The preamplifier 19 preferably utilises op-amps, e.g. LT1051 op-amps Al, A2, because of 5 their low noise characteristics and their extremely low input offset voltage of 5.0 10 4mV. In this embodiment, the amplifier circuit 17 operates from a 12V switched mode power supply 23, located externally to the preamplifier 19, in order to reduce induced noise and make power supply filtering easier. The circuit consumes approximately 6mA. Thus, the measuring current is designed to be very small, and preferably, the time that it is applied is also very small as the lo current to each thermistor may be switched off between measurements. Cosequently the thermistors are only intermittently on and the selfheating effects are reduced. The exterior 10 of calorimeter 8 or sample chamber 3 is preferably made of metal in order to act as a Faraday cage. 5 Figure 2 shows a circuit diagram for the amplifier circuit for use with the device of figure 1.
The thermistors 13a-13b can be fed from the 12V supply 23 via a lOKQ balancing potentiometer 29 and their respective lOOkQ loads 31a, 31b. The balance potentiometer 29 may be mounted in the remotely positioned control unit 25 in order to set a balance point against imbalances in component values.
20 The output signal Soul from the thermistor bridge l S can be fed to an instrumentation amplifier consisting of opamps Al, A2 and A3, this type of amplifier being preferred due to its outstanding common mode rejection ratio. Al and A2 give nominal gains of 100 (91.9 actual) and their outputs can be fed to the remote panel where they are combined in A3. At this point, any noise induced in the connecting cable will be equal and opposite in the two anti-phase 25 signals and this noise will therefore be cancelled out at the inputs of A3. The gain can be set by the 1 OKQ feedback resistors and Rx. If Rx is chosen to be 1 OOQ then this will give a further 100 times gain (101 actual), but it may be difficult to balance the system. In a preferred embodiment of the present invention, a set of gain switching resistors with values of lOOQ, lkQ, and lOKQ may be incorporated, giving total gains for this stage of 100, 10 and 1 30 respectively.
Op-amp A4 can be used as a power supply splitter, the two 1 OKQ resistors being stabilised by the 2.2QF capacitor and buffered by Ad, and this provides a half-supply reference for the
d r À: À - -
. . 4 s input and output of A3. The output of the system swings plus and minus 6Vwith respect to this reference.
The overall system gain is a theoretical maximum of 9201.1, which gives a maximum sensitivity of plus and minus 3.7 10-3 OC.
Preferably the preamplifier and detector means, i.e. the thermistors, are built directly onto or into a chip. The chip can be made of any suitable material such as semiconducting materials, e.g. silicon, or insulating materials such as plastics, e.g. Nylon' PTFE, etc. This provides significant advantages such as increased mechanical strength with associated ease of handling 0 and reduced volume with associated reduce heat capacity. Using null offset devices means that the addition of amplifiers onto the chip does not introduce problems with noise.
An example of an embodiment of the present invention comprising an array of wells each containing a thermistor is shown schematically in figure 3, here the reference numerals refer 5 to the following features: 51- R-T curve snatched thermistors in wells 53- Array of switching MOSFETs with low RDSon 55- Reference thermistor 1 20 57- Reference thermistor MOSFET 59- Load resistor 61- First op-amp 63- Reference thermistor 2 65- Bias resistor 25 67- Second op-amp 69- Counter/Decoder 71- 96-well array 73computer 30 The circuitry shown in Fig 3 is a diagrammatic representation of a highly sensitive multi-well calorimeter capable of discerning temperature changes of less than 3.7 X 10-4 degrees Centigrade. Fig 3 shows part of a 96 well array 71 with R-T curve matched thermistors 51 fitted in the bottom of each well. The thermistors 51 are in series with switching MOSFETs 53 and load 59. A reference thermistor 55, preferably mounted on a printed circuit board, with 35 it's own MOSFET 57 is also connected across this circuit.
Signals from a Counter/I)ecoder 69 switch the MOSFET gates thus placing each thermistor 53 into circuit as required.
. . .. 5.. Reset and increment signals are fed from a computer 73 into the counter/decoder 69 under software control. A Reset input from the computer 73 forces the Counter/decoder 69 to select MOSFET 57, which switches into the circuit, thermistor 55, a reference thermistor.
This reference thermistor 55 is used to reduce the step in amplitude when compared to the 5 measuring thermistors 51.
The increment signal steps the output sequentially from well to well. The output from the potential divider made up of load 59 and the relevant thermistor/MOSFET combination, feed into Op-amp 61.
Op-amp 61 is used to amplify the signal from the thermistor network and to provide 0 temperature compensation. It is measuring such a small temperature change, the total range of the output represents only a small fraction of a degree, therefore, if the ambient temperature changes, it is likely to saturate the output in one direction or the other. Thermistor 63 and its bias resistor 65, compensate for any small change in ambient temperature.
Op-amp 67 is used to invert the signal, so that the output is positive going as the temperature 5 rises. Op-amp 67 is also used to further amplify the signal and to reference it to half the supply rail, in order to read both positive going and negative going trends.
Thermistors suffer from self-heating effects. In order to measure the resistance of a thermistor, a current must be passed through it and a measurement taken, either of the current through it, or the voltage across it. In this circuit the measuring current is designed to be very 20 small, and the time that it is applied is also very small as the current to each thermistor is switched off between measurements. Thus the thermistor is only intermittently on and the self-heating effects are reduced. The software of the present invention takes a reading at approx. 1 millisecond per well, just enough time for the op-amps to settle, and a reading to be taken. The software allows readings to be taken at regular intervals from 10 per second 25 upwards. The combination of scanning and the low reference current result in a self heating effect of less than 1 X 10 8 degrees with a resultant time constant of several seconds, which has negligible effect on the reading taken.
The electronics shown in Fig 3 are preferably enclosed in a brass enclosure (not shown), which has temperature controlled water passing through it for temperature 30 stabilization. This enclosure acts as a Faraday cage to reduce susceptibility to noise.
It is conceivable to also incorporate the A/D converter into the enclosure, and use a timebase to control the timing more accurately; signals would then be sent from this unit to a computer.
To. A data acquisition system suitable for use with this embodiment has the following software specifications:
The system should have the ability to s 1:- acquire data from the 96 channels of the multiplexer unit 100 times a second 2:-signal levels +/5V at an resolution of about lmV 3:-produce a graph showing the signal level against time 4:-save the data into suitable format, e.g. an ASCII text file, that can be read by another program (e.g. Microsoft Excel TM) Hardware suitable for use in the present invention would be a personal computer equipped with a National Instruments PCI-6035E Multi-IO data acquisition card (16 bit Analogue input resolution - for 1 OV bipolar operation this corresponds to 0.3 mV) National Instruments SCB-68 Shielded Connector Block 5 National Instruments SH68-68-EP Shielded cable Software suitable for achieving the present invention would be: 13Software Development Tools Windows 2000 Professional 20 Borland Delphi National Instruments NI-DAQ software National Instruments Measurement and TeeMach TChart 4.0 ProO 2s Connection Details Multiplexer Signals Output: The multiplexer unit produces a stepped analogue output Inputs: Requires two digital control inputs, one to reset the multiplexer to channel 0, and the other to advance through the multiplexer channels.
Using the SCB-68 connector block and the shielded cable, the multiplexer output is connected into analogue input channel O in differential mode on the 6035E card. The digital control
. . . 7. .. (-., signals are connected to the digital I/O lines DIOO and DIOl for channel advance and multiplexer reset respectively.
Program Details 5 A software program for the present invention could be as follows the program may be written in Delphi and first configures the 6035E data acquisition card for using the digital I/O lines as output, and then resets the multiplexer to channel 0.
The program then waits for the user to input the number of data points they svish to collect and the time interval between them. The program may collect an additional data point so that o the user has a reading at time zero. When the start button is clicked the program allocates memory for the storage of the data to be collected, clears the graph of the current results, and starts the timer that will perform the measurements.
At every timer interval the program resets the multiplexer, executes a short delay to allow the 5 data to stabilise, and then performs an analogue I/O to get the data for channel 0, steps to the next multiplexer channel, executes the delay, reads channel l, steps to the next multiplexer channel, executes the delay, reads channel 2, etc. until all 96 channels have been read.
The data is then stored in the internal memory buffer that was allocated at the start of the run.
The graph of the results is updated, regularly, e.g. every 500ms, or longer if the data acquisition period is greater than this.
At the end of the run the data is stored to disk, either in the directory that the program is in, or 25 in the location chosen in 'File -> Set directory...'.
Data manipulation may be included in the software, allowing, for example, differentiating the signals, and to integrate the areas under the curves.
30 The data collection rate may be increased beyond lOOHz, and in order to maintain this collection rate while the results are being graphed, and to allow a larger number of data points to be collected at this faster rate it is conceivable to use the data acquisition card's own timers
r. À. 8. ... as the source of the signals for resetting the multiplexer and advancing the channel count, and to make the card perform DMA based data acquisition The card is theoretically capable of performing 200,000 AD conversions a second, which should allow a data point collection rate of up to 12500 Hz ( 0.1 ms) although at this rate the multiplexer may conveniently be 5 replaced with a sample and hold unit in order to get the signals properly synchronised with each other.
It is also possible to provide an array of detector means each with its own pre-amp on a chip.
The power amplifiers do not need be intimately associated with the sensor and, as described lo above, may reside in a separate location. By using relatively fast switching the signal from n sensors may be addressed by a subset of power amplifiers.Thus, for example, every ten sensors might only need one power amp which can switch between them in a programmed manner. 5 Devices in accordance with the present invention are particularly suitable for measuring biological or biochemical reactions in which very small quantities of heat are emitted or absorbed and the temperature changes are small.
The above mentioned embodiments are intended to illustrate the present invention and are not 20 intended to limit the scope of protection claimed by the following claims.

Claims (12)

. . - Claims
1. Device for measuring small temperature changes comprising a calorimeter containing a sample chamber for containing a sample, a detector means, such as a thermistor' for producing an output signal relating to changes in temperature characterised in that said 5 detector means is operated intermittently when measuring temperature changes.
2. Device in accordance with claim 1 characterised in that said calorimeter further contains a preamplifier for amplifying said output signal and said preamplifier is comprised in said sample chamber.
3. Device in accordance with any of the previous claims characterised in that said sample lo chamber is surrounded by a Faraday cage.
4. Device in accordance with any of the previous claims characterised that said sample chamber, preamplifier and detector are integrally formed on or in a chip.
5. Device in accordance with any of claims 1-3 characterised on that said preamplifier and detector are integrally formed on or in a chip.
15
6. Device in accordance with any of the previous claims characterised in that said chip is made of silicon or plastic.
7. Device in accordance with any of the previous claims characterised in that said device comprises a plurality of sample chambers.
8. Device in accordance with claim 7 characterised in that each sample chamber has a 20detector and preamplifier.
9. Device in accordance with claim 7 or 8 characterised in that the outputs from a plurality of preamplifiers are connected to one power amplifier.
10. Calorimeter array comprising two or more sample-receiving wells on a substrate, characterised in that each well is provided with a thermistor for sensing temperature 25changes in said well.
11. Calorimeter in accordance with claim 10 characterised in that it is further provided with means for pulsing said thermistors on and off.
12. Calorimeter in accordance with any of claim 10 and 1 1 characterised in that it is provided with multiplexing means for multiplexing signals from said thermistors.
GB0216501A 2001-07-17 2002-07-17 Thermistor device Expired - Fee Related GB2379024B (en)

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Application Number Priority Date Filing Date Title
GBGB0117376.4A GB0117376D0 (en) 2001-07-17 2001-07-17 Thermocouple device

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GB0216501D0 GB0216501D0 (en) 2002-08-28
GB2379024A true GB2379024A (en) 2003-02-26
GB2379024B GB2379024B (en) 2004-03-03

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GB0117376D0 (en) 2001-09-05
GB2379024B (en) 2004-03-03
GB0216501D0 (en) 2002-08-28
US20030016725A1 (en) 2003-01-23

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