Ions provide a more advantageous dose distribution than photons for external beam radiotherapy, due to their so-called inverse depth dose deposition and, in particular a characteristic dose maximum at their end-of-range (Bragg peak). The favorable physical interaction properties enable selective treatment of tumors while sparing surrounding healthy tissue, but optimal clinical use requires accurate monitoring of Bragg peak positioning inside tissue. We introduce ionoacoustic tomography based on detection of ion induced ultrasound waves as a technique to provide feedback on the ion beam profile. We demonstrate for 20 MeV protons that ion range imaging is possible with submillimeter accuracy and can be combined with clinical ultrasound and op...
In proton therapy high energy protons are used to irradiate a tumor. Ideally, the delivered proton d...
Proton range verification by ionoacoustic wave sensing is a technique under development for applicat...
Objective. Image guidance and precise irradiation are fundamental to ensure the reliability of small...
Ions provide a more advantageous dose distribution than photons for external beam radiotherapy, due ...
PURPOSE: Range verification in ion beam therapy relies to date on nuclear imaging techniques which r...
Abstract The characteristic depth dose deposition of ion beams, with a maximum at the end of their r...
Purpose: The Bragg peak located at the end of the ion beam range is one of the main advantages of io...
Proton therapy has the potential to deposit its energy in tissue with high conformity to the tumor a...
Accurate knowledge of the exact stopping location of ions inside the patient would allow full exploi...
In proton therapy, cancer patients are irradiated with high energy protons. For a successful treatme...
This study investigates the application of broadband capacitive micromachined ultrasonic transducers...
Proton radiotherapy has the potential to provide state-of-the-art dose conformality in the tumor are...
Oncological hadron therapy utilizes a beam of charged particles to destroy the tumor cells, exploiti...
[EN] Hadrontherapy makes it possible to deliver high doses of energy to cancerous tumors by using th...
In proton therapy high energy protons are used to irradiate a tumor. Ideally, the delivered proton d...
Proton range verification by ionoacoustic wave sensing is a technique under development for applicat...
Objective. Image guidance and precise irradiation are fundamental to ensure the reliability of small...
Ions provide a more advantageous dose distribution than photons for external beam radiotherapy, due ...
PURPOSE: Range verification in ion beam therapy relies to date on nuclear imaging techniques which r...
Abstract The characteristic depth dose deposition of ion beams, with a maximum at the end of their r...
Purpose: The Bragg peak located at the end of the ion beam range is one of the main advantages of io...
Proton therapy has the potential to deposit its energy in tissue with high conformity to the tumor a...
Accurate knowledge of the exact stopping location of ions inside the patient would allow full exploi...
In proton therapy, cancer patients are irradiated with high energy protons. For a successful treatme...
This study investigates the application of broadband capacitive micromachined ultrasonic transducers...
Proton radiotherapy has the potential to provide state-of-the-art dose conformality in the tumor are...
Oncological hadron therapy utilizes a beam of charged particles to destroy the tumor cells, exploiti...
[EN] Hadrontherapy makes it possible to deliver high doses of energy to cancerous tumors by using th...
In proton therapy high energy protons are used to irradiate a tumor. Ideally, the delivered proton d...
Proton range verification by ionoacoustic wave sensing is a technique under development for applicat...
Objective. Image guidance and precise irradiation are fundamental to ensure the reliability of small...