- Cho SO, Heo SH. Super miniature X-ray tube using NANO material field emitter: Google Patents; 2012.
- Choe KS, Liauw SL. Radiotherapeutic strategies in the management of low-risk prostate cancer. ScientificWorldJournal. 2010;10:1854-69. doi.org/10.1100/tsw.2010.179. PubMed PMID: 20852828.
- Porter AT, Blasko JC, Grimm PD, Reddy SM, Ragde H. Brachytherapy for prostate cancer. CA Cancer J Clin. 1995;45:165-78. doi.org/10.3322/canjclin.45.3.165. PubMed PMID: 7743420.
- Kubo HD, Glasgow GP, Pethel TD, Thomadsen BR, Williamson JF. High dose-rate brachytherapy treatment delivery: report of the AAPM Radiation Therapy Committee Task Group No. 59. Med Phys. 1998;25:375-403. doi.org/10.1118/1.598232. PubMed PMID: 9571605.
- Gierga DP, Shefer RE. Characterization of a soft X-ray source for intravascular radiation therapy. Int J Radiat Oncol Biol Phys. 2001;49:847-56. doi.org/10.1016/S0360-3016(00)01510-8. PubMed PMID: 11172969.
- Heoa S, Haa J, Choa S. An Optimization of Super-Miniature X-ray Target. 2011.
- Dinsmore M, Harte KJ, Sliski AP, Smith DO, Nomikos PM, Dalterio MJ, et al. A new miniature x-ray source for interstitial radiosurgery: device description. Med Phys. 1996;23:45-52. doi.org/10.1118/1.597790. PubMed PMID: 8700032.
- Ihsan A, Heo SH, Kim HJ, Kang CM, Cho SO. An optimal design of X-ray target for uniform X-ray emission from an electronic brachytherapy system. Nuclear Instruments and Methods in Physics Research Section B: Beam Interactions with Materials and Atoms. 2011;269:1053-7. doi.org/10.1016/j.nimb.2011.03.001.
- Rivard MJ, Davis SD, DeWerd LA, Rusch TW, Axelrod S. Calculated and measured brachytherapy dosimetry parameters in water for the Xoft Axxent X-Ray Source: an electronic brachytherapy source. Med Phys. 2006;33:4020-32. doi.org/10.1118/1.2357021. PubMed PMID: 17153382.
- Rivard MJ, Rusch TW, Axelrod S. Radiological dependence of electronic brachytherapy simulation on input parameters. Medical Physics. 2006:11747-4502.
- Silvern D, Rusch T, Zaider M, editors Dosimetric Benefits of an Adjustable-Energy Electronic Brachytherapy Source.Medical Physics. 2004;31:1880.
- Hiatt JR, Davis SD, Rivard MJ. A revised dosimetric characterization of the model S700 electronic brachytherapy source containing an anode-centering plastic insert and other components not included in the 2006 model. Med Phys. 2015;42:2764-76. doi.org/10.1118/1.4919280. PubMed PMID: 26127029.
- Rong Y, Welsh JS. New technology in high-dose-rate brachytherapy with surface applicators for non-melanoma skin cancer treatment: electronic miniature x-ray brachytherapy. Skin Cancer Overview: InTech; 2011.
- Liu DMC. Characterization of novel electronic brachytherapy system. Montreal: McGill University; 2007.
- Holt RW, Rivard MJ. Electronic brachytherapy: comparisons with external-beam and high-dose-rate 192Ir brachytherapy. J Am Coll Radiol. 2008;5:221-3. doi.org/10.1016/j.jacr.2007.12.001. PubMed PMID: 18312972.
- Clausen S, Schneider F, Jahnke L, Fleckenstein J, Hesser J, Glatting G, et al. A Monte Carlo based source model for dose calculation of endovaginal TARGIT brachytherapy with INTRABEAM and a cylindrical applicator. Z Med Phys. 2012;22:197-204. doi.org/10.1016/j.zemedi.2012.06.003. PubMed PMID: 22739321.
- Grobmyer SR, Lightsey JL, Bryant CM, Shaw C, Yeung A, Bhandare N, et al. Low-kilovoltage, single-dose intraoperative radiation therapy for breast cancer: results and impact on a multidisciplinary breast cancer program. J Am Coll Surg. 2013;216:617-23. doi.org/10.1016/j.jamcollsurg.2012.12.038. PubMed PMID: 23415885.
- Chiu-Tsao S-T, Davis S, Pike T, DeWerd LA, Rusch TW, Burnside RR, et al. Two-dimensional dosimetry for an electronic brachytherapy source using radiochromic EBT film: Determination of TG43 parameters. Brachytherapy. 2007;6:110. doi.org/10.1016/j.brachy.2007.02.110.
- Kelley L, Axelrod S, Dutta A. SU-DD-A2-03: Measurement of Skin Dose When Using FlexiShield® with the Axxent® Electronic Brachytherapy System. Medical Physics. 2008;35:2632-. doi.org/10.1118/1.2961358.
- Holt RW, Thomadsen BR, Orton CG. Point/Counterpoint. Miniature x-ray tubes will ultimately displace Ir-192 as the radiation sources of choice for high dose rate brachytherapy. Med Phys. 2008;35:815-7. doi.org/10.1118/1.2836415. PubMed PMID: 18404918.
- Ballester-Sanchez R, Pons-Llanas O, Candela-Juan C, Celada-Alvarez FJ, de Unamuno-Bustos B, Llavador-Ros M, et al. Efficacy and safety of electronic brachytherapy for superficial and nodular basal cell carcinoma. J Contemp Brachytherapy. 2015;7:231-8. doi.org/10.5114/jcb.2015.52140. PubMed PMID: 26207112. PubMed PMCID: 4499517.
- Beatty J, Biggs PJ, Gall K, Okunieff P, Pardo FS, Harte KJ, et al. A new miniature x-ray device for interstitial radiosurgery: dosimetry. Med Phys. 1996;23:53-62. doi.org/10.1118/1.597791. PubMed PMID: 8700033.
- Eaton DJ, Duck S. Dosimetry measurements with an intra-operative x-ray device. Phys Med Biol. 2010;55:N359-69. doi.org/10.1088/0031-9155/55/12/N02. PubMed PMID: 20505225.
- Hendricks JS, McKinney GW, Fensin ML, James MR, Johns RC, Durkee JW, et al. MCNPX 2.6. 0 Extensions. Los Alamos National Laboratory. 2008.
- Ay MR, Shahriari M, Sarkar S, Adib M, Zaidi H. Monte carlo simulation of x-ray spectra in diagnostic radiology and mammography using MCNP4C. Phys Med Biol. 2004;49:4897-917. doi.org/10.1088/0031-9155/49/21/004. PubMed PMID: 15584526.
- McKinney G, Durkee J, Waters L, Pelowitz D, James M, Hendricks J. Review of Monte Carlo all-particle transport codes and overview of recent MCNPX features. PoS. 2006;088.
- Braga MR, Penna R, Vasconcelos DC, Pereira C, Guerra BT, Silva C, editors. Nuclear densimeter of soil simulated in MCNP-4C code. International Nuclear Atlantic Conference: Rio de Janeiro, RJ, Brazil; 2009.
- Ihsan A, Heo SH, Cho SO. Optimization of X-ray target parameters for a high-brightness microfocus X-ray tube. Nuclear Instruments and Methods in Physics Research Section B: Beam Interactions with Materials and Atoms. 2007;264:371-7. doi.org/10.1016/j.nimb.2007.09.023.
- Grant EJ, Posada CM, Castano CH, Lee HK, editors. Electron field emission Particle in Cell (PIC) coupled with MCNPX simulation of a CNT-based flat-panel-X-ray source. Medical Imaging 2011: Physics of Medical Imaging. 2011;7961:796108.
- McConn RJ, Gesh CJ, Pagh RT, Rucker RA, Williams III R. Compendium of material composition data for radiation transport modeling. WA (US): Pacific Northwest National Laboratory (PNNL), Richland; 2011.
- Hughes III HG. Summary of DBCN Options in MCNP6. Los Alamos National Laboratory (LANL); 2013.
- Pelowitz D, Durkee J, Elson J, Fensin M, James M, Johns R, et al. MCNPX 2.7. 0 Extensions, LA-UR-11-02295. New Mexico: Los Alamos National Laboratory; 2011.
- Nasseri MM. Determination of tungsten target parameters for transmission X-ray tube: A simulation study using Geant4. Nuclear Engineering and Technology. 2016;48:795-8. doi.org/10.1016/j.net.2016.01.006.
- Seibert JA. X-ray imaging physics for nuclear medicine technologists. Part 1: Basic principles of x-ray production. J Nucl Med Technol. 2004;32:139-47. PubMed PMID: 15347692.
- Mordechai S. Applications of Monte Carlo method in science and engineering. InTech, Rijeka. 2011:6.
- Ganguly A, Karim R. Essential physics for radiology and imaging. New Delhi: Academic Publishers; 2016.
- Zoubair M, El Bardouni T, Allaoui O, Boulaich Y, El Bakkari B, El Younoussi C, et al. Computing Efficiency Improvement in Monte Carlo Simulation of a 12 MV Photon Beam Medical LINAC. World Journal of Nuclear Science and Technology. 2013;3:14. doi.org/10.4236/wjnst.2013.31003.
- Ihsan A, Heo SH, Cho SO. A microfocus X-ray tube based on a microstructured X-ray target. Nuclear Instruments and Methods in Physics Research Section B: Beam Interactions with Materials and Atoms. 2009;267:3566-73. doi.org/10.1016/j.nimb.2009.08.012.
- Sukowski F, Uhlmann N. Monte Carlo Simulations in NDT. Applications of Monte Carlo Method in Science and Engineering: InTech; 2011.
- Wang R, Pei L, Huang Z. Study on Calculation of Detector Flux with Monte Carlo Methods. Journal of Nuclear Science and Technology. 2000;37:436-40.
- Davis SD. Air-kerma strength determination of a miniature x-ray source for brachytherapy applications. 2009.
- Malabre-O’Sullivan N. Low energy photon mimic of the tritium beta decay energy spectrum. 2013.
- Williams T. Axial Energy Distribution in Disc-Shaped Tantalum and Aluminium Bremsstrahlung Conversion Targets. Acta Physica Polonica-Series A General Physics. 2009;115:1180. doi.org/10.12693/APhysPolA.115.1180.
- Sofiienko A, Jarvis C, Ådne V. Electron range evaluation and X-ray conversion optimization in tungsten transmission-type targets with the aid of wide electron beam Monte Carlo simulations
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