Claims
- 1. A method for monitoring radiation doses administered to patients undergoing radiation treatments, comprising the steps of:
releasably securing at least one single-use dosimeter sensor patch onto the skin of the patient such that the patch is self-contained and devoid of wires extending therefrom; administering radiation to the patient in a first treatment session; contacting the sensor patch with a dose-reader device after the administering step to obtain data associated with a change in an operational parameter in the dosimeter sensor patch; and determining the radiation dose received by the patient during the administering step based on the change in the operational parameter.
- 2. A method according to claim 1, wherein an underside of the patch comprises an adhesive, and wherein the releasably securing step is carried out by pressing the patch onto the skin so that it adheres thereto.
- 3. A method according to claim 1, wherein the releasably securing step is carried out using an adhesive coverlay disposed over the sensor patch such that at least a portion of the adhesive coverlay contacts the skin and adheres the sensor patch thereto.
- 4. A method according to claim 1, further comprising at least one of calibrating and/or pre-dosing the at least one single-use dosimeter sensor patch before releasably securing the sensor patch onto the skin of the patient.
- 5. A method according to claim 4, wherein the calibrating step and/or pre-dosing step further comprises calibrating and/or pre-dosing a plurality of sensor patches simultaneously, wherein the plurality of sensor patches are disposed on a unitary sheet of sensor patches that are electrically coupled.
- 6. A method according to claim 1, further comprising storing radiation-dose data on a memory device integrated with the sensor patch.
- 7. A method according to claim 6, further comprising downloading the stored data to a remote computer and/or reader.
- 8. A method according to claim 1, further comprising sterilizing the single-use dosimeter sensor patch and applying an adhesive to a selected primary surface.
- 9. A method according to claim 8, further comprising packaging the single-use dosimeter patch in a sterile package suitable for human medical use.
- 10. A method according to claim 1, wherein the at least one single-use dosimeter patch is a plurality of low-profile discrete flexible single use patches, and wherein the step of releasably securing comprises positioning each patch in a different location about the targeted radiation zone on the patient.
- 11. A method according to claim 10, further comprising positioning at least one of the patches proximate to a region where radiation is not desired or in radiation sensitive region to detect whether radiation is received in the regions.
- 12. A method according to claim 10, further comprising:
positioning a second plurality of dosimeter sensor patches different from the first dosimeter patches onto the patient during a second treatment session; administering a second radiation therapy to the patient at a second treatment session; contacting each of the second plurality of sensor patches with a dose-reader device after the administering step to obtain data associated with a change in an operational parameter in each respective dosimeter sensor patch; and determining the radiation dose received by the patient during the administering step based on the change in the operational parameter of the dosimeter sensor patches.
- 13. A method according to claim 12, further comprising:
disposing of the first plurality of dosimeter sensor patches after the first treatment session; and disposing of the second plurality of dosimeter patches after the second treatment session.
- 14. A method according to claim 12, further comprising:
storing the first plurality of dosimeter sensor patches after the first treatment session on a physical patient form; and storing the second plurality of dosimeter patches after the second treatment session on a physical patient form.
- 15. A method according to claim 12, wherein the patches are placed in substantially the same locations for the first and second treatments.
- 16. A method according to claim 10, wherein the determining step includes serially individually physically contacting the sensor patches with the dose-reader device to determine the radiation dose amount for each of the sensor patches.
- 17. A method according to claim 1, wherein contacting the sensor patch with a dose-reader device comprises positioning the sensor patch in a sensor port of the dose-reader device such that there is an electrical coupling between the sensor patch and the dose-reader device.
- 18. A method according to claim 17, wherein the sensor patch has been adapted to be inserted into the dose-reader device and wherein the dose-reader device has been adapted to receive the sensor patch.
- 19. A method according to claim 1, wherein contacting the sensor patch with a dose-reader device comprises positioning the dose-reader device such that an electrical coupling is established between the sensor patch and the dose-reader device, wherein the sensor patch includes at least one electrical sensor contact to facilitate the electrical coupling.
- 20. A method according to claim 10, wherein the patient undergoing treatment has a targeted tumor treatment site, wherein the dosimeter patches are disposed about the tumor site on the front and back of the body, and wherein the dose amount delivered to the tumor site is estimated based on the determined values.
- 21. A method according to claim 16, further comprising:
positioning a second plurality of dosimeter sensor patches onto the patient during a second treatment session subsequent to the first treatment session; administering a second radiation therapy to the patient at a second treatment session; and considering whether there is a different determined value at one or more patch locations between the first and second treatments to identify whether the radiation is properly focused.
- 22. A method according to claim 1, wherein the dosimeter patch sensor comprises a MOSFET device with an associated threshold voltage which changes when exposed to radiation, and wherein the determining step further includes the step of analyzing the change in the threshold voltage.
- 23. A method according to claim 22, wherein the method further comprises the step of determining a pre-radiation threshold voltage value prior to the administering radiation step.
- 24. A method according to claim 23, further comprising delivering a first set-up verification radiation dose and obtaining a first radiation dose value for at least one sensor patch after the at least one sensor patch is secured to the patient to confirm that a plurality of beam set-up parameters are correct and/or suitable.
- 25. A method according to claim 24, wherein the plurality of set-up beam parameters comprise at least one of beam energy, field size, surface to surface distance, electrons and photons.
- 26. A method according to claim 22, wherein the determining step comprises reducing the value of the post-radiation threshold voltage by the pre-radiation threshold voltage value and comparing to a dose curve to determine the radiation dose.
- 27. A method according to claim 10, further comprising mapping a dose gradient by correlating the determined radiation dose values at each sensor patch to the anatomical location on the subject of each patch.
- 28. A method according to claim 1, further comprising providing an overlay material over the surface of the sensor patch to simulate a subsurface placement of the sensor patch corresponding to a desired distance beneath the skin of the patient.
- 29. A method according to claim 28, wherein the overlay material is configured to be integrated with the sensor patch.
- 30. A method according to claim 28, wherein the overlay material comprises a resilient, flexible, skin-like material.
- 31. A method according to claim 28, wherein forming the overlay material comprises forming the overlay material having a thickness of from about 0.5 to about 3 cm.
- 32. A method according to claim 31, wherein forming the overlay material comprises forming the overlay material having a thickness of from about 1 to about 1.5 cm.
- 33. A system for monitoring radiation administered to a patient during a therapeutic treatment, the system comprises:
at least one disposable single-use dosimeter patch, the patch comprising a body holding a circuit with at least one MOSFET and an external reader contact region thereon, the at least one MOSFET having an associated threshold voltage that changes when exposed to radiation, the body comprising opposing upper and lower primary surfaces; and an external portable dose-reader being configured to make electrical contact with the patch by physically engaging with the contact region on the patch to obtain voltage threshold data corresponding to the dose amount of radiation exposure it is exposed to in use, wherein the patch has a perimeter that is devoid of outwardly extending loose lead wires.
- 34. A system according to claim 33, wherein the at least one patch comprises a tab portion that is configured to be inserted in the external portable dos-reader and to make electrical contact therewith.
- 35. A system according to claim 34, wherein the external portable dose-reader comprises a sensor port, the senor port being configured to receive the tab portion of the patch and make electrical contact therewith to obtain the threshold voltage value associated with the patch.
- 36. A system according to claim 33, wherein the at least one dosimeter patch is a plurality of discrete sensor patches having a conformable resilient body, and wherein the reader is configured to serially contact with each respective sensor patch to obtain the threshold voltage value associated therewith prior to use in active radiation therapy.
- 37. A system according to claim 33, wherein the at least one dosimeter patch is a plurality of discrete sensor patches having a conformable resilient body, and wherein the reader is configured to serially contact with each respective sensor patch to obtain the threshold voltage value associated therewith after use in active radiation therapy.
- 38. A system according to claim 33, wherein the reader has a probe end portion that is configured to penetrate or pierce the body of the patch to make direct electrical contact with the circuit at the reader contact region.
- 39. A system according to claim 33, wherein the reader further comprises a display for outputting the calculated dose amount.
- 40. A system according to claim 33, wherein the reader comprises data transfer means to transmit the calculated dose amount to a local or remote controller for electronic storage into a patient's records.
- 41. A system according to claim 33, wherein the patch further comprises a memory storage device that is electrically coupled to the at least one MOSFET, the memory storage device including the obtained data and patient information.
- 42. A system according to claim 41, wherein the memory storage device comprises an EEPROM.
- 43. A system according to claim 41, wherein the memory storage device comprises data corresponding to an electronic bias parameter for radiation quantification.
- 44. A system according to claim 41, wherein the at least one patch is at least one of pre-dosed and/or calibrated prior to placing the at least one patch on the patient and wherein the pre-dosing and/or calibration data is stored in the memory storage device of the patch.
- 45. A system according to claim 44, wherein a plurality of patches are provided on a unitary sheet, the sheet of patches being at least one of pre-dosed and/or calibrated simultaneously, and wherein the pre-dosing and/or calibration data is stored in the memory storage device of the respective patches.
- 46. A system according to claim 33, further comprising computer program code for determining a radiation value for each patch and determining a delivered dose for each treatment session, the patch being configured to measure between about 1.8-2 Gray per session.
- 47. A system according to claim 46, further comprising computer program code for accumulating the individual amounts for each patch during each session to generate confirmation of the delivered cumulative doses in the range of between 35-80 Gray.
- 48. A system according to claim 33, wherein the at least one MOSFET includes a MOSFET pair, wherein the MOSFET pair are differentially biased during irradiation to create different voltage offsets.
- 49. A system according to claim 33, wherein the at least one MOSFET includes a MOSFET pair, wherein one of the MOSFETs in the pair is selectively implanted with dopant ions to shift the threshold voltage with respect to the other MOSFET and/or to increase the radiation sensitivity of the implanted MOSFET relative to the other MOSFET.
- 50. A system according to claim 33, wherein the lower primary surface of the patch comprises a medical grade adhesive thereon.
- 51. A system according to claim 33, wherein the patch comprises a coverlay that includes a medical grade adhesive that is configured to overlie the circuit substrate and hold the sensor patch in position on the patient.
- 52. A system according to claim 33, further comprising an overlay material over the surface of the at least one sensor patch to simulate a subsurface placement of the at least one sensor patch corresponding to a desired distance beneath the skin of the patient.
- 53. A system according to claim 52, wherein the overlay material is configured to be integrated with the sensor patch.
- 54. A system according to claim 52, wherein the overlay material comprises a flexible, resilient, skin-like material.
- 55. A system according to claim 52, wherein the overlay material has a thickness of from about 0.5 to about 3 cm.
- 56. A system according to claim 55, wherein the overlay material has a thickness of from about 1 to about 1.5 cm.
- 57. A disposable external use radiation dosimeter patch, the patch comprising a conformable resilient substrate holding a circuit with an operational electronic component that changes a parameter in a detectable predictable manner when exposed to radiation, the body comprising opposing upper and lower primary surfaces, wherein the dosimeter patch, in use, is devoid of externally extending lead wires and wherein the patch is a single-use dosimeter patch that is adhesively secured to the skin of a patient.
- 58. A disposable dosimeter patch according to claim 57, wherein the lower primary surface comprises an adhesive thereon.
- 59. A disposable dosimeter patch according to claim 57, wherein the patch comprises a coverlay that includes a medical grade adhesive that is configured to overlie the circuit substrate and hold the sensor patch in position on the patient.
- 60. A disposable dosimeter patch according to claim 57, wherein the circuit further comprises a memory storage device.
- 61. A disposable dosimeter patch according to claim 60, wherein the memory storage device comprises and EEPROM.
- 62. A disposable dosimeter patch according to claim 60, wherein the patch is at least one of pre-dosed and/or calibrated and the pre-dosing and/or calibration data is stored in the memory storage device.
- 63. A disposable dosimeter patch according to claim 57, wherein the disposable dosimeter patch is adapted to be inserted into a reader device and electrically couple the reader device to the patch circuit.
- 64. A disposable dosimeter patch according to claim 57, wherein the operational electronic component is at least one MOSFET, wherein the circuit is adapted to engage with an external reader, and wherein the detectable operational parameter that changes is the at least one MOSFET threshold voltage.
- 65. A disposable dosimeter patch according to claim 57, wherein the at least one MOSFET is configured to electrically short the gate to drain connection.
- 66. A disposable dosimeter patch according to claim 57, wherein the at least one MOSFET is a pair of MOSFETs, wherein one of the MOSFETs in the pair is selectively implanted with dopant ions so as to shift its threshold voltage relative to that of the other MOSFET and/or to increase the sensitivity of the implanted MOSFET relative to the other MOSFET to thereby allow a differential voltage measurement to be obtained to measure radiation.
- 67. A disposable dosimeter patch according to claim 57, wherein the circuit comprises at least two MOSFETS, a respective one positioned over another on opposing sides of the substrate in face-to-face alignment to inhibit orientation influence of the substrate.
- 68. A disposable dosimeter patch according to claim 57, wherein the disposable patch is configured to communicate with a reader device wirelessly to obtain measured radiation data.
- 69. A set of disposable single-use radiation dosimeter patches comprising:
a plurality of discrete disposable single-use dosimeter patches, each patch comprising a conformable resilient substrate holding a circuit with an operational electronic component that changes a parameter in a detectable predictable manner when exposed to radiation, the body comprising opposing upper and lower primary surfaces and wherein the dosimeter patch, in use, is devoid of externally hanging lead wires.
- 70. A set of patches according to claim 69, wherein the lower primary surfaces comprise an adhesive thereon.
- 71. A set of patches according to claim 69, wherein each patch in the set of patches comprises a coverlay that includes a medical grade adhesive that is configured to overlie the circuit substrate and hold the sensor patch in position on the patient.
- 72. A set of sensor patches according to claim 69, wherein the sensor patches are configured with identifying indicia thereon.
- 73. A set of sensor patches according to claim 72, wherein the operational electronic component is at least one MOSFET, and wherein the detectable operational parameter that changes is the at least one MOSFET threshold voltage.
- 74. A set of sensor patches according to claim 69, further comprising zero dose characterizing data of threshold voltage for each of the sensor patches.
- 75. A set of sensor patches according to claim 74, wherein the characterizing data is held in a memory storage device provided on each of the selected patches in the set of patches.
- 76. A set of sensor patches according to claim 69, wherein each of the sensor patches are configured to detect radiation doses in the range of at least from about 10 to about 200 cGy.
- 77. A set of sensor patches according to claim 76 wherein each of the sensor patches are configured to detect radiation doses in the range of at least from about 40 to about 70 cGy.
- 78. A set of sensor patches according to claim 76, wherein the sensor patches are configured with a low profile when viewed from the side.
- 79. A set of sensor patches according to 78, wherein a low profile sensor patch includes a sensor patch that is substantially planar when viewed from the side.
- 80. A set of sensor patches according to claim 69, wherein the sensor patches are conformable to the skin and substantially planar.
- 81. A set of sensor patches according to claim 69, wherein the sensor patches are adapted be at least partially inserted into a reader device and electrically connect the reader device to the circuit.
- 82. A set according to claim 69, wherein the set of patches are disposed on a common sheet and wherein the sheet of patches is at least one of pre-dosed and/or calibrated before the set of patches are exposed to active therapeutic radiation.
- 83. A set of patches according to claim 82, wherein the set of patches are electrically coupled to each other during calibration and/or pre-dosing.
- 84. A computer program product for evaluating a radiation dose delivered to a patient, the computer program product comprising:
a computer readable storage medium having computer readable program code embodied in the medium, the computer-readable program code comprising:
computer readable program code for receiving pre-irradiation threshold voltage data associated with a plurality of disposable sensor patches; computer readable program code for accepting data from a reader configured to electrically serially contact each of the plurality of disposable sensors; and computer readable program code for determining the voltage threshold shift of the disposable sensor patches after radiation to determine the radiation exposure.
- 85. A computer program product according to claim 84, further comprising extrapolating the determined dose of the sensor patches to estimate a radiation dose delivered to the tumor based on data obtained from the plurality of patches.
- 86. A computer program product according to claim 84, further comprising computer code for averaging the dose amount over a plurality of the patches to determine a representative radiation dose.
- 87. A computer program product according to claim 86, further comprising computer code for discarding statistically incorrect values.
- 88. A computer program product according to claim 87, further comprising computer program code for alerting of potential data corruption or discarding dose values that substantially depart from predicted values.
- 89. A dosimeter radiation sensor for quantifying radiation exposure or dose, comprising a sensor circuit that includes a MOSFET pair configuration that does not require floating gate structures and/or external voltage applied during radiation.
- 90. A dosimeter according to claim 89, wherein one of the MOSFET pair is selectively implanted with ions to shift the threshold voltage relative to the other MOSFET.
- 91. A dosimeter according to claim 90, wherein the threshold voltages of the two MOSFETs in the MOSFET pair are compared to determine the radiation dose.
- 92. A dosimeter according to claim 89, wherein the dosimeter is configured as a surface mounted patch.
- 93. A dosimeter according to claim 89, wherein the dosimeter is configured to communicate with a reader device wirelessly to obtain measured radiation data.
- 94. A dosimeter according to claim 89, wherein the MOSFET pair is configured to be unbiased.
- 95. A dosimeter according to claim 89, wherein the dosimeter is configured to be inserted into a reader and electrically couple the reader to the dosimeter.
- 96. A dose-reader device comprising a sensor port that is adapted to receive a sensor patch, the sensor patch having a tab portion adapted to be inserted into the sensor port and electrically couple the sensor patch to the reader device to provide data associated with an operational parameter in the sensor patch to the reader.
- 97. A dose-reader device according to claim 96, further comprising a port for downloading the associated data to a remote computer and/or a computer application.
- 98. A dose-reader device according to claim 96, wherein the dose-reader device is a modified personal digital assistant (PDA).
- 99. A method of fabricating radiation sensor patches, comprising:
forming a plurality of radiation-sensitive elements in a high-density pattern on on a unitary sheet of substrate material; calibrating at least one of the plurality of radiation-sensitive elements; and separating the plurality of radiation-sensitive elements from the unitary sheet of substrate material into a plurality of discrete radiation sensor patches.
- 100. A method according to claim 99, wherein calibrating at least one of the plurality comprises calibrating the plurality of radiation-sensitive elements simultaneously utilizing a calibration line provided on the unitary sheet that electrically couples the plurality of radiation-sensitive elements.
- 101. A method according to claim 99, wherein calibrating further comprises:
programming a memory storage device provided on at least one of the radiation-sensitive elements with radiation calibration data utilizing the calibration line provided on the unitary sheet.
- 102. A method according to claim 99, wherein the unitary sheet comprises perforations to facilitate separation of the plurality of radiation-sensitive elements into the plurality of discrete radiation sensor patches.
- 103. A method according to claim 99, further comprising:
applying an adhesive to at least one of the separated discrete radiation sensor patches the at least one radiation sensor patch may be releasably adhered to a patient's skin.
- 104. A method according to claim 99, further comprising:
applying a coverlay with a primary surface configured to releasably adhere the separated discrete radiation sensor patch to a patient's skin to at least one of the separated discrete radiation sensor patches.
RELATED APPLICATION
[0001] This application claims priority from U.S. Provisional Patent Application Serial No. 60/334,580 entitled Disposable Single-Use External Dosimeters for Use in Radiation Therapies, filed Nov. 30, 2001, the contents of which are hereby incorporated herein by reference.
Provisional Applications (1)
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Number |
Date |
Country |
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60334580 |
Nov 2001 |
US |