IP Library Granted Patent US 12,415,092
Granted Patent B2
US 12,415,092 · App. 17/575,074 · Granted Sep 16, 2025

Flash radiotherapy accelerator system

Inventors: Stephen E. Sampayan (Manteca, CA); George James Caporaso (East Quogue, NY); Yu-Jiuan Chen (Fremont, CA); Kristin Cortella Sampayan (Manteca, CA)
Assignees: Lawrence Livermore National Security, LLC; Opcondys, Inc.
A61N5/1048A61N5/1078H05H7/04H05H7/06H05H7/22A61N2005/1088A61N2005/1089H05H2277/11
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Quick Facts
Patent No.
US 12,415,092
App. No.
17/575,074
Granted
Sep 16, 2025
Kind
B2
Abstract

Methods, devices and systems for ultra-high dose radiotherapy are disclosed. The described techniques rely in-part on active switching control of a photoconductive switch during the time the accelerator is accelerating charged particles to produce the output radiation at the desired dose rates. One radiotherapy system includes a particle accelerator configured to receive charged particles from a pulsed source. The particle accelerator includes a pipe configured to allow the charged particles to pass through as a beam, a magnetic core positioned proximate to the pipe and coupled to the pulsed source, and at least one multilayer insulator positioned adjacent to the pipe and the magnetic core. The system also includes a photoconductive switch coupled to the particle accelerator and configured to supply the particle accelerator with a plurality of voltage pulses.

Claims (41)

1. An accelerator system for use in a radiotherapy system, comprising:

a particle accelerator configured to receive charged particles from a pulsed source, wherein the particle accelerator comprises:

a pipe configured to allow the charged particles to pass through as a beam,

a magnetic core positioned proximate to the pipe and coupled to the pulsed source, and

a multilayer insulator positioned adjacent to the pipe and the magnetic core; and

a photoconductive switch coupled to the particle accelerator and configured to supply the particle accelerator with a plurality of voltage pulses, wherein the particle accelerator is operable to accelerate the charged particles based on the plurality of voltage pulses, and to produce an output beam comprising one or more radiation pulses for radiotherapy,

wherein the photoconductive switch includes a doped crystalline material that is configured to receive a voltage from an energy source to establish an electric field across the doped crystalline material, and

wherein the photoconductive switch is configured to receive light from a light source and to operate in response to the received light, the photoconductive switch being operable in a linear mode of operation in response to the received light,

wherein the accelerator system is operable to:

produce output radiation pulses with an instantaneous dose rate that exceeds 1.8×10 5 Gy/s,

administer a totality of the output radiation pulses that constitute a required dose in less than 200 ms,

produce the output radiation pulses with an average dose rate greater than 100 Gy/s, and

irradiate an entirety of a target region with levels above both the instantaneous dose rate and the average dose rate.

2. The accelerator system of claim 1 , wherein the particle accelerator comprises:

a solenoid coupled to the magnetic core that is positioned around the pipe, wherein the solenoid is positioned proximate to the magnetic core and the multilayer insulator, wherein the pulsed source is coupled to the magnetic core via the solenoid to enable the particle accelerator to receive the charged particles.

3. The accelerator system of claim 1 , wherein the light source includes one or more laser sources.

4. The accelerator system of claim 1 , wherein the photoconductive switch is operable to modify one or more of an amplitude, shape, spacing, number or width of the plurality of voltage pulses supplied to the particle accelerator.

5. The accelerator system of claim 1 , wherein the accelerator system has a three-dimensional footprint of less than or equal to 100 cubic meters.

6. The accelerator system of claim 1 , wherein the particle accelerator is an induction linear accelerator.

7. The accelerator system of claim 1 , wherein the charged particles comprise electrons.

8. The accelerator system of claim 1 , wherein the pipe is configured to accommodate multiple beams of charged particles.

9. A method for producing output radiation in a radiotherapy system, comprising:

receiving, at a particle accelerator of a particle accelerator system, a beam of charged particles from a particle source, wherein the particle accelerator comprises a pipe configured to allow the beam of charged particles to pass through, a magnetic core positioned proximate to the pipe and coupled to a pulsed source, and an insulator positioned adjacent to the pipe and the magnetic core, wherein the particle accelerator system further includes a photoconductive switch coupled to the particle accelerator that comprises a doped crystalline material that is configured to receive a voltage from an energy source to establish an electric field across the doped crystalline material;

producing a plurality of voltage pulses by the photoconductive switch in response to receiving light that is incident on the doped crystalline material; and

accelerating the beam of charged particles by the particle accelerator based on the plurality of voltage pulses to produce one or more output radiation beams for flash radiotherapy,

wherein the method further comprises:

producing the one or more output radiation beams that include radiation pulses with an instantaneous dose rate that exceed 1.8×105 Gy/s,

administering a required dose in less than 200 ms,

producing the one or more output radiation beams having radiation pulses with an average dose rate greater than 100 Gy/s, and

irradiating an entirety of a target region with levels above both the instantaneous dose rate and the average dose rate.

10. The method of claim 9 , wherein the photoconductive switch is configured to receive the light from a light source and to operate in response to the received light, the photoconductive switch being operable in a linear mode of operation in response to the received light.

11. The method of claim 10 , wherein the light source includes one or more laser sources.

12. The method of claim 9 , further comprising:

measuring a radiation amount administered to the entirety of the target region.

13. The method of claim 9 , comprising:

modifying an instantaneous dose rate or average dose rate of the one or more output radiation beams based on the plurality of voltage pulses produced by the photoconductive switch.

14. The method of claim 9 , wherein the particle accelerator is an induction linear accelerator.

15. The method of claim 9 , wherein the beam of charged particles comprise electrons.

16. The method of claim 9 , wherein the pipe is configured to accommodate multiple beams of charged particle beams.

17. The method of claim 9 , wherein the particle accelerator system has a three-dimensional footprint of less than or equal to 100 cubic meters, and the method further comprises:

operating the particle accelerator system in a clinical setting.

Assignments (3)
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded May 16, 2022
From: SAMPAYAN, STEPHEN E.; CAPORASO, GEORGE JAMES; CHEN, YU-JIUAN
To: LAWRENCE LIVERMORE NATIONAL SECURITY, LLC
Reel/Frame 059915/0568 →
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded May 16, 2022
From: SAMPAYAN, KRISTIN CORTELLA
To: OPCONDYS, INC.
Reel/Frame 059915/0679 →
CONFIRMATORY LICENSE (SEE DOCUMENT FOR DETAILS) Recorded Feb 23, 2022
From: LAWRENCE LIVERMORE NATIONAL SECURITY, LLC
To: U.S. DEPARTMENT OF ENERGY
Reel/Frame 059220/0766 →
Continuity (2)
Provisional Application 63136645 · Jan 13, 2021
Related Publication 20220219014A1 · Jul 14, 2022
References Cited (101)
US 2331788A · Baldwin · 1943 [cited by applicant]
US 4646027A · Birx et al. · 1987 [cited by applicant]
US 4888556A · Buttram et al. · 1989 [cited by applicant]
US 6066901A · Burkhart et al. · 2000 [cited by applicant]
US 7710051B2 · Caporaso et al. · 2010 [cited by applicant]
US 10270368B2 · Sampayan · 2019 [cited by applicant]
US 10282567B2 · Miller et al. · 2019 [cited by applicant]
US 10792517B2 · Lee et al. · 2020 [cited by applicant]
US 11697032B2 · Sampayan · 2023 [cited by examiner]
US 20070228301A1 · Nakano · 2007 [cited by applicant]
US 20090224700A1 · Chen et al. · 2009 [cited by applicant]
US 20100032580A1 · Caporaso et al. · 2010 [cited by applicant]
US 20100102246A1 · Park et al. · 2010 [cited by applicant]
US 20110101376A1 · Caporaso · 2011 [cited by examiner]
US 20110133203A1 · Werne et al. · 2011 [cited by applicant]
US 20130140468A1 · Chen · 2013 [cited by applicant]
US 20140368108A1 · Nahum et al. · 2014 [cited by applicant]
US 20140371511A1 · Zwart et al. · 2014 [cited by applicant]
US 20160238412A1 · Germann · 2016 [cited by examiner]
US 20160287905A1 · Liger · 2016 [cited by applicant]
US 20180161595A1 · Fuentes · 2018 [cited by applicant]
US 20220203135A1 · Sampayan et al. · 2022 [cited by applicant]
US 20220219014A1 · Sampayan et al. · 2022 [cited by applicant]
US 20220304136A1 · McNeur · 2022 [cited by examiner]
US 20230310897A1 · Sampayan et al. · 2023 [cited by applicant]
KR 1020200038429 · 2020 [cited by applicant]
WO 2019059932A1 · 2019 [cited by applicant]
WO 2022146855 · 2022 [cited by applicant]
A. Fateev, G. Dolbilov, I. Ivanov, V. Kosukhin, N. Lebedev, V. Petrov, V. Razuvakin, V. Shvetsov and M. Yurkov, “Status of the first stage of linear induction accelerator SILUND-21,” in Proceedings Particle Accelerator … [cited by applicant]
A. Toepfer, “A review of accelerator concepts for the advanced hydrotest facility,” in 19th International Linear Accelerator Conference, Chicago, IL, 1998. [cited by applicant]
B. Kulke and R. Kihara, “Recent Performance Improvements on Fxr,” IEEE Trans. Nucl. Sci., vol. 30, No. 4, pp. 3030-3032, 1983. [cited by applicant]
C. Karzmark, “Advances is linear accelerator design for radiotherapy,” Med. Phys., vol. 11, No. 2, pp. 105-128, 1984. [cited by applicant]
C. Shang, Y.-J. Chen, G. Caporaso, T. Houck, N. Molau, S. Nelson, W. Ng and J. Fockler, “BBU design of linear induction accelerator cells for radiography application,” in 1997 Particle Accelerator Conference, Vancouver,… [cited by applicant]
D. Birx, “Induction linear accelerators,” AIP Conference Proceedings, vol. 249, pp. 1553-1614, 1992. [cited by applicant]
E. Ginzton, W. Hansen and W. Kennedy, “A linear electron accelerator, ” Rev. Sc. Instr., vol. 19, pp. 89-108, 1948. [cited by applicant]
E. Merle, R. Boivinet, M. Mouillet, O. Pierret, P. Anthouard, J. Bardy, C. Bonnafond, A. Devin, P. Eyl and C. Vermare, “Installation of the AIRIX Induction Accelerator, ” in 19th International Linear Accelerator Confere… [cited by applicant]
E. Schuler, et al., “Experimental Platform for Ultra-high Dose Rate FLASH Irradiation of Small Animals Using a Clinical Linear Accelerator,” Int J of Rad Oncology Biol Phys, vol. 97, No. 1, pp. 195-203, 2017. [cited by applicant]
G. Becker and D. Caswell, “Operation of a six-MeV linear accelerator,” Rev. Sci. Instr., vol. 22, No. 6, pp. 402-405, 1951. [cited by applicant]
G. Caporaso, et al., “A compact linac for intensity modulated proton therapy based on a dielectric wall accelerator,” Physica Medica, vol. 24, No. 2, pp. 98-101, 2008. [cited by applicant]
G. R. Neil, J. Edighoffer, P. Livingston, J. Rawls and I. Smith, “The induction-FEL design for the White Sands missile range,” Nucl. Instr. Meth. Phys. Res. A, vol. 296, No. 1-3, pp. 257-262, 1990. [cited by applicant]
H. Kirbie, B. Hickman, B. Lee, C. Ollis, C. Brooksby and R. Saethre, “An all solid state pulse power source for high PRF induction accelerators,” in 23rd International Power Modulator Symposium, Rancho Mirage, CA USA, 1… [cited by applicant]
H. Kirbie, G. Caporaso, D. Goerz, R. Hanks, B. Hickman, B. Lee, C. Brooksby and R. Saethre, “MHz repetition rate solid-state driver for high current induction accelerators,” in 1999 Particle Accelerator Conference, New … [cited by applicant]
I. Smith, “Induction voltage adders and the induction accelerator family, ” Phys. Rev. ST Accel. Beams, vol. 7, pp. 064801-1-40, 2004. [cited by applicant]
I. Uetomi, M. Yamazaki, H. Kobayashi and I. Sato, “Extended Theory of Beam Loading in Electron Linac,” Jpn. J. Appl. Phys., vol. 32, No. 6A, pp. 2858-2864, 1993. [cited by applicant]
International Search Report and Written Opinion for International Patent Application No. PCT/US2022/012288 mailed May 4, 2022 (10 pages). [cited by applicant]
J. A. Watson, A. N. Payne, S. E. Sampayan and C. W. Ollis, “Precision voltage regulation on the 5 KHz, 3.125 MW ETA-II pulsed power system,” in Eighth IEEE International Conference on Pulsed Power, San Diego, CA, USA, 1… [cited by applicant]
J. Barnard, R. Bangerter, A. Faltens, T. Fessenden, A. Friedman, E. Lee, B. Logan, S. Lund, W. Meier, W. Sharp and S. Yu,, “Induction accelerator architectures for heavy-ion fusion,” Nucl. Instr. Meth. in Phys. Res. A, … [cited by applicant]
J. Beal, N. Christofilos and R. Hester, “The Astron Linear Accelerator,” IEEE Trans. Nucl. Sci., vol. 16, No. 3, pp. 294-298, 1969. [cited by applicant]
J. Bourhis, et al., “Treatment of a first patient with FLASH-radiotherapy,” Radiotherapy and Oncology, vol. 139, pp. 18-22, 2019. [cited by applicant]
J. D. Wilson, E. M. Hammond , G. S. Higgins and K. Petersson, “Ultra-High Dose Rate (FLASH) Radiotherapy: Silver Bullet or Fool's Gold?, ” Front. Oncology, vol. 9, p. 1563, 2020. [cited by applicant]
J. Deng, B. Ding, J. Shi, Y. He, J. Li, Q. Li, G. Cao, L. Wen and G. Dai, “Upgrading of Linear Induction Accelerator X-Ray Facility (LIAXF), ” in 19th International Linear Accelerator Conference, Chicago, Il USA, 1998. [cited by applicant]
J. Deng, et al., “Design of the DRAGON-I Linear Induction Accelerator, ” in 21st International Linear Accelerator Conference, Gyeongju, Korea, 2002. [cited by applicant]
J. Melton and E. Rose, “A model for the magnetic cores of linear induction accelerator cells,” in Tenth IEEE International Pulsed Power Conference, Albuquerque, NM USA, 1995. [cited by applicant]
J. Smith, V. Bailey, H. Lackner and S. Putnam, “Performance of the spiral line induction accelerator,” in Proceedings of the 1997 Particle Accelerator Conference, Vancouver, BC Canada, 1997. [cited by applicant]
J. Weir, J. Boyd, Y.-J. Chen, J. Clark, D. Lager and A. Paul, “Improved ETA-II accelerator performance,” in Proceedings of the 1999 Particle Accelerator Conference, New York, NY USA, 1999. [cited by applicant]
K. Brown, “Properties of iris-loaded guides, ” in Conference on Linear Accelerators, Upton, NY, 1961. [cited by applicant]
K. Sampayan and S. Sampayan, “Wide Bandgap Photoconductive Switches Driven by Laser Diodes as a High-Voltage Mosfet Replacement for Bioelectrics and Accelerator Applications,” in IEEE Pulsed Power & Plasma Science, Orla… [cited by applicant]
K. Takayama and R. J. Briggs, Induction Accelerators, New York: Springer, 2011. [cited by applicant]
K. Yatsui, et al., “Pulse-power technology and its applications at LBT, Nagaoka,” in 11th International Conference on High-Power Particle Beams, Prague, Czech Republic, 1996. [cited by applicant]
L. Reginato, “The Advanced Test Accelerator (ATA), a 50-MeV 10-KA Induction Linac, ” IEEE Trans. Nucl. Sci., vol. 30, pp. 2970-2974, 1983. [cited by applicant]
L. Yang, L. Yang, F. Yang and X. Ma, “Slow-Scale and Fast-Scale instabilities in parallel-connected single-phase H-bridge inverters: A design-oriented study,” Int. J. Bifurcation and Chaos, vol. 30, No. 1, pp. 2050005-1… [cited by applicant]
M. Burns, et al., “DAHRT accelerators update and plans for initial operation, ” in Particle Accelerator Conference, New York, NY USA, 1999. [cited by applicant]
M. Burns, et al., “Status of the DARHT phase 2 long-pulse accelerator, ” in 2001 Particle Accelerator Conference, Chicago, IL USA, 2001. [cited by applicant]
M. Hodgdon, “Mathematical theory and calculations of magnetic hysteresis curves, ” IEEE Trans. Magnetics, vol. 24, No. 6, pp. 3120-3122, 1988. [cited by applicant]
M. Jaccard, et al., “High dose-per-pulse electron beam dosimetry: Commissioning of the Oriatron eRT6 prototype linear accelerator for preclinical use,” Med. phys., vol. 45, No. 2, p. 863-874, 2018. [cited by applicant]
M.-C. Vozenin, et al., “The Advantage of FLASH Radiotherapy Confirmed in Mini-pig and Cat-cancer Patients, ” Clin Cancer Res, vol. 25, No. 1, pp. 35-42, 2019. [cited by applicant]
N. Christofilos, R. Hester, W. Lamb, D. Reagan, W. Sherwood and R. Wright, “High current linear induction accelerator for electrons,” Rev. Sci. Instr., vol. 35, No. 7, pp. 886-890, 1964. [cited by applicant]
N. Khizhnyak, V. Tolok, V. Chechkin and N. Nazarov, “The acceleration of large current pulses in electron linear accelerators,” Plasma Physics (J. Nucl. Ener. C), vol. 4, pp. 129-134, 1962. [cited by applicant]
O. Zlobinskaya, et al., “The Effects of Ultra-High Dose Rate Proton Irradiation on Growth Delay in the Treatment of Human Tumor Xenografts in Nude Mice,” Radiat. Res., vol. 181, No. 2, pp. 177-183, 2014. [cited by applicant]
P. Anthouard, et al., “Airix at CESTA,” in 11th International Conference on High-Power Particle Beams, Prague, Czech Republic, 1996. [cited by applicant]
P. Corcoran, et al., “Experimental tests of the power supply and prototype cell for the 1.5 MeV SLIA acceleration unit,” in 1991 IEEE Particle Accelerator Conference, San Francisco, CA USA, 1991. [cited by applicant]
P. G. Maxim, P. Keall and J. Cai, “Point/Counterpoint, FLASH radiotherapy: Newsflash or flash in the pan?,” Med. Phys., vol. 46, No. 10, pp. 4287-4290, 2019. [cited by applicant]
P. Montay-Gruel, et al., “Irradiation in a flash: Unique sparing of memory in mice after whole brain irradiation with dose rates above 100 Gy/s,” Radiotherapy and Oncology, vol. 124, No. 3, pp. 365-369, 2017. [cited by applicant]
P. Seidl, et al., “Irradiation of materials with short, intense ion pulses at NDCX-II,” Laser and Part. Beams, vol. 35, No. 2, pp. 373-378, 2017. [cited by applicant]
R. Cassel, M. Nguyen, E. Cook and C. Brooksby, “A hybrid solid state induction modulator for klystrons, ” in 16th IEEE International Pulsed Power Conference, Albuquerque, NM USA, 2007. [cited by applicant]
R. J. Adler, “Pulse Power Formulary,” Air Force Office of Scientific Research, Washington, DC USA, 1989. [cited by applicant]
R. Neal, “Design of linear electron accelerators with beam loading,” J. Appl. Phys., vol. 26, No. 7, pp. 1019-1024, 1958. [cited by applicant]
R. Post and N. Shiren, “The Stanford Mark II Inear accelerator,” Rev. Sci. Instr., vol. 26, No. 2, pp. 205-209, 1955. [cited by applicant]
R. Wideröe, “Über ein neues Prinzip zur Herstellung hoher Spannungen,” Archiv für Elektrotechnik, vol. 21, No. 4, p. 387-406, 1928. [cited by applicant]
S. Allen, et al., “Generation of high power 140 GHz microwaves with an FEL for the MTX experiment,” in Proceedings of International Conference on Particle Accelerators, Washington, DC USA, 1993. [cited by applicant]
S. Benedetti, A. Grudiev and A. Latina, “High gradient linac for proton therapy,” Physical Rev. Accel. Beams, vol. 20, pp. 040101-1-19, 2017. [cited by applicant]
S. Mazumder, “Stability analysis of parallel DC-DC converters,” IEEE Trans. Aerospace Electr. Syst., vol. 42, No. 1, pp. 50-69, 2006. [cited by applicant]
S. Sampayan, et al., “Characterization of carrier behavior in photonically excited 6H silicon carbide exhibiting fast, high voltage, bulk transconductance properties,” Scientific Reports, 2021. [cited by applicant]
S. Sampayan, et al., “Performance characteristics of an induction linac magnetic pulse compression modulator at multi-kilohertz pulse repetition frequencies,” in IEEE Particle Accelerator Conference, San Francisco, CA U… [cited by applicant]
S. Sampayan, G. Caporaso, Y.-J. Chen, D. Decker and W. Turner, “Energy sweep compensation of induction accelerators,” in 1990 LINAC Conference, Albuquerque, NM USA, 1990. [cited by applicant]
S. Sampayan, P. Vitello, M. Krogh and J. Elizondo, “Multilayer high gradient insulator technology,” IEEE Trans. Dielect. Elect. Insul., vol. 7, No. 3, pp. 334-339, 2000. [cited by applicant]
T. Feder, “High radiation dose rates may improve cancer therapy,” Physics today, vol. 73, No. 12, pp. 24-26, 2020. [cited by applicant]
T. Houck, et al., “Measured and theoretical characterization of the RF properties of stacked, high-gradient insulator material,” in Proceedings of the 1997 Particle Accelerator Conference, Vancouver, BC Canada, 1997. [cited by applicant]
T. Mackie, T. Holmes, S. Swerdloff, P. Reckwerdt, J. Deasy, J. Yang, B. Paliwal and T. Kinsella, “Tomotherapy: A new concept for the delivery of dynamic conformal radiotherapy,” Med. Phys., vol. 20, pp. 1709-1719, May 3… [cited by applicant]
V. Smirnov and S. Vorozhtsov, “Modern compact accelerators of cyclotron type for medical applications,” Phys. Part. Nuclei, vol. 47, p. 863-883, 2016. [cited by applicant]
W. Panofsky and M. Bander, “Asymptotic theory of beam break-up in linear accelerators,” Re. Sci. Instr., vol. 39, No. 2, pp. 206-212, 1968. [cited by applicant]
W. Turner, G. Caporaso, G. Craig, J. DeFord, L. Reginato, S. Sampayan, R. Kuenning and I. Smith, “Impedance characteristics of induction accelerator cells,” in International Conference on High-Power Particle Beams, Karl… [cited by applicant]
W. Waldron, et al., “The NDCX-II engineering design,” Nucl. Instr. Meth. Phys. Res. A, vol. 733, pp. 226-232, 2014. [cited by applicant]
W. Waldron, J. Galvin, W. Ghiorso and C. Pappas, “The design and testing of an inductive voltage adder for ALS-U kicker magnets,” in IEEE International Power Modulator and High Voltage Conference, San Francisco, CA USA,… [cited by applicant]
Y.-J. Chen, et al., “Compact Dielectric Wall Accelerator Development For Intensity Modulated Proton Therapy and Homeland Security Applications,” in 10th International Conference on Applications of Nuclear Techniques, Cr… [cited by applicant]
International Search Report and Written Opinion mailed Jun. 2, 2022 for International Patent Application No. PCT/US2021/065016. [cited by applicant]
Maxim, P., G., et al., “PHASER: A platform for clinical translation of FLASH cancer radiotherapy,” Radiotherapy and Oncology 139 (2019) 28-33, Elsevier, 6 pages. [cited by applicant]
S. Humphries, Principals of Charged Particle Acceleration, Hoboken, NJ: John Wiley and Sons, 1999. [cited by applicant]
S. Sampayan, P. Vitello, M. Krogh and J. Elizondo, “Multilayer ultra-high gradient insulator technology,” in 18th International Symposium on Discharges and Electrical Insulation in Vacuum, Eindhoven, Netherlands, 1998. [cited by applicant]
Extended European Search Report of European Patent Application No. 21916267.4 dated Jun. 4, 2024 (8 pages). [cited by applicant]
Schuller et al. “The European Joint Research Project UHDpulse—Metrology for advanced radiotherapy using particle beams with ultra-high pulse dose rates,” Physica Medica, Acta Medica Edizioni E Congressi, Rome IT, Nov. 9… [cited by applicant]