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The disadvantages of a multileaf collimator for proton radiotherapy outweigh its advantages.
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- Medical Physics, 2014, v. 41, n. 2, p. n/a, doi. 10.1118/1.4824437
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- Article
Comparison of secondary neutron dose in proton therapy resulting from the use of a tungsten alloy MLC or a brass collimator system.
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- Medical Physics, 2011, v. 38, n. 11, p. 6248, doi. 10.1118/1.3656025
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Within the next 10–15 years protons will likely replace photons as the most common type of radiation for curative radiotherapy.
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- Medical Physics, 2008, v. 35, n. 10, p. 4285, doi. 10.1118/1.2955553
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Within the next decade conventional cyclotrons for proton radiotherapy will become obsolete and replaced by far less expensive machines using compact laser systems for the acceleration of the protons.
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- Medical Physics, 2006, v. 33, n. 3, p. 571
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Boron neutron capture enhancement of fast neutron radiotherapy utilizing a moderated fast neutron beam .
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- Medical Physics, 2005, v. 32, n. 3, p. 666
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Design considerations for a computer controlled multileaf collimator for the Harper Hospital fast neutron therapy facility.
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- Medical Physics, 2002, v. 29, n. 4, p. 499, doi. 10.1118/1.1463061
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Miniature tissue-equivalent proportional counters for BNCT and BNCEFNT dosimetry.
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- Medical Physics, 2001, v. 28, n. 9, p. 1911, doi. 10.1118/1.1398303
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- Article
Attenuation and activation characteristics of steel and tungsten and the suitability of these materials for use in a fast neutron multileaf collimator.
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- Medical Physics, 2001, v. 28, n. 6, p. 1006, doi. 10.1118/1.1376135
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A conducting plastic simulating brain tissue.
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- Medical Physics, 2000, v. 27, n. 11, p. 2560, doi. 10.1118/1.1320043
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Use of low-pressure tissue equivalent proportional counters for the dosimetry of neutron beams used in BNCT and BNCEFNT.
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- Medical Physics, 2000, v. 27, n. 3, p. 535, doi. 10.1118/1.598921
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Paired Mg and Mg(B) ionization chambers for the measurement of boron neutron capture dose in neutron beams.
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- Medical Physics, 1999, v. 26, n. 11, p. 2482, doi. 10.1118/1.598768
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Monte Carlo calculations to characterize the source for neutron therapy facilities.
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- Medical Physics, 1999, v. 26, n. 5, p. 783, doi. 10.1118/1.598596
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- Article
Designing an optical distance indicator for a radiation therapy accelerator.
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- Medical Physics, 1999, v. 26, n. 2, p. 236, doi. 10.1118/1.598510
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- Article
Mass energy-absorption coefficients and mass collision stopping powers for electrons in tumors of various histologies.
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- Medical Physics, 1999, v. 26, n. 3, p. 472, doi. 10.1118/1.598544
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- Article
A light localizer for use at large distances from a radiation source.
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- Medical Physics, 1998, v. 25, n. 6, p. 892, doi. 10.1118/1.598265
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The elemental composition of tumors: Kerma data for neutrons.
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- Medical Physics, 1997, v. 24, n. 8, p. 1241, doi. 10.1118/1.598144
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Microdosimetric specification of the radiation quality of a d(48.5)+Be fast neutron therapy beam produced by a superconducting cyclotron.
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- Medical Physics, 1996, v. 23, n. 9, p. 1591, doi. 10.1118/1.597896
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An international neutron dosimetry intercomparison.
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- Medical Physics, 1995, v. 22, n. 12, p. 2103, doi. 10.1118/1.597653
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Physical characteristics of a clinical d(48.5)+Be neutron therapy beam produced by a superconducting cyclotron.
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- Medical Physics, 1995, v. 22, n. 9, p. 1459, doi. 10.1118/1.597570
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Calculations of x-ray and neutron transmission through multirod arrays.
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- Medical Physics, 1995, v. 22, n. 4, p. 427, doi. 10.1118/1.597468
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Radiological properties of a prototype multi-rod collimator for producing irregular fields in photon radiation therapy.
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- Medical Physics, 1995, v. 22, n. 1, p. 31, doi. 10.1118/1.597531
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A superconducting cyclotron for neutron radiation therapy.
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- Medical Physics, 1994, v. 21, n. 6, p. 779, doi. 10.1118/1.597337
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Practical aspects of transmission cord blocks in radiotherapy.
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- Medical Physics, 1987, v. 14, n. 3, p. 400, doi. 10.1118/1.596056
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- Article