Novel applications of particle accelerators to radiotherapy

被引:2
作者
Kreiner, AJ
Burlón, AA
机构
[1] Comis Nacl Energia Atom, Dept Fis, RA-1650 San Martin, Argentina
[2] Univ Nacl San Martin, Escuela Ciencia & Tecnol, RA-1653 Villa Ballester, Argentina
[3] Consejo Nacl Invest Cient & Tecn, RA-1033 Buenos Aires, DF, Argentina
来源
ACTA PHYSICA HUNGARICA NEW SERIES-HEAVY ION PHYSICS | 2002年 / 16卷 / 1-4期
关键词
hadrontherapy; accelerator-based boron neutron capture therapy; Li-7(p; n) and C-13(d; n); reactions;
D O I
10.1556/APH.16.2002.1-4.27
中图分类号
O57 [原子核物理学、高能物理学];
学科分类号
070202 ;
摘要
Charged hadrons (protons and heavier ions) have very definite advantages over photons as far as radiotherapy applications are concerned. They allow for much better spatial dose localization due to their charge, relatively high mass and nature of the energy deposition process. In the frame of an attempt to promote the introduction of hadrontherapy in Argentina we have installed and started using an external beam facility at our tandem accelerator TANDAR. The advantages of heavy ions can only be fully exploited for tumors of well defined localization. In certain types of malignancies, however, the region infiltrated by tumor cells is diffuse, with no sharp boundaries and with microscopic ramifications. In such cases (particularly in certain brain cancers) a more sophisticated scheme has been suggested called boron neutron capture therapy (BNCT). In this work, the use of the Tandar accelerator to produce neutrons for feasibility studies for BNCT through low-energy proton beams on a thick LiF target is being briefly described. Studies on the C-13(d,n) reaction and a comparison with other neutron-producing reactions are also mentioned. Simulation work to optimize an accelerator-based neutron production target is discussed. A project is being prepared to develop a small proton accelerator in Argentina. Technical specifications of this machine will be briefly discussed.
引用
收藏
页码:243 / 256
页数:14
相关论文
共 21 条
[1]   Accelerator-based neutron source for the neutron-capture and fast neutron therapy at hospital [J].
Bayanov, BF ;
Belov, VP ;
Bender, ED ;
Bokhovko, MV ;
Dimov, GI ;
Kononov, VN ;
Kononov, OE ;
Kuksanov, NK ;
Palchikov, VE ;
Pivovarov, VA ;
Salimov, RA ;
Silvestrov, GI ;
Skrinsky, AN ;
Soloviov, NA ;
Taskaev, SY .
NUCLEAR INSTRUMENTS & METHODS IN PHYSICS RESEARCH SECTION A-ACCELERATORS SPECTROMETERS DETECTORS AND ASSOCIATED EQUIPMENT, 1998, 413 (2-3) :397-426
[2]   Designing accelerator-based epithermal neutron beams for boron neutron capture therapy [J].
Bleuel, DL ;
Donahue, RJ ;
Ludewigt, BA ;
Vujic, J .
MEDICAL PHYSICS, 1998, 25 (09) :1725-1734
[3]  
BRIESMEISTER JF, 2000, GEN MONTE CARLO N PA
[4]   TOTAL CROSS-SECTIONS AND THERMONUCLEAR REACTION-RATES FOR C-13(D,N) AND C-14(D,N) [J].
BRUNE, CR ;
KAVANAGH, RW .
PHYSICAL REVIEW C, 1992, 45 (03) :1382-1388
[5]  
BURLON A, 2000, P 27 REUN AN AS ARG
[6]   In-phantom dosimetry for the 13C(d,n)14N reaction as a source for accelerator-based BNCT [J].
Burlon, AA ;
Kreiner, AJ ;
White, SM ;
Blackburn, BW ;
Gierga, DP ;
Yanch, JC .
MEDICAL PHYSICS, 2001, 28 (05) :796-803
[7]   Measurements of low-energy (d,n) reactions for BNCT [J].
Colonna, N ;
Beaulieu, L ;
Phair, L ;
Wozniak, GJ ;
Moretto, LG ;
Chu, WT ;
Ludewigt, BA .
MEDICAL PHYSICS, 1999, 26 (05) :793-798
[8]  
FIROUZBAKHT ML, 1991, RADIOCHIM ACTA, V55, P1
[9]  
Hall EJ., 1994, RADIOBIOLOGY RADIOLO
[10]  
HARMON J, 1996, P 14 INT C APPL ACC