Methods allowing for in situ dosimetry and range verification are essential in radiotherapy to reduce the safety margins required to account for uncertainties introduced in the entire treatment workflow. This study suggests a non-invasive dosimetry concept for carbon ion radiotherapy based on phase-change ultrasound contrast agents. Injectable nanodroplets made of a metastable perfluorobutane (PFB) liquid core, stabilized with a crosslinked poly(vinylalcohol) shell, are vaporized at physiological temperature when exposed to carbon ion radiation (C-ions), converting them into echogenic microbubbles. Nanodroplets, embedded in tissue-mimicking phantoms, are exposed at 37 °C to a 312 MeV/u clinical C-ions beam at different doses betwe...
Recent efforts using perfluorocarbon (PFC) nanoparticles in conjunction with acoustic droplet vapori...
Superheated nanodroplet (ND) vaporization by proton radiation was recently demonstrated, opening the...
We investigate the vaporization of phase-change ultrasound contrast agents using photon radiation fo...
Methods allowing for in situ dosimetry and range verification are essential in radiotherapy to reduc...
Technologies enabling in vivo range verification during proton therapy are actively sought as a mea...
Purpose: Despite the physical benefits of protons over conventional photon radiation in cancer treat...
Technologies enabling in vivo range verification during proton therapy are actively sought as a mean...
The potential of proton therapy to improve the conformity of the delivered dose to the tumor volume ...
Purpose: We investigate the vaporization of phase-change ultrasound contrast agents using photon rad...
The potential of proton therapy to improve the conformity of the delivered dose to the tumor volumei...
Recent efforts using perfluorocarbon (PFC) nanoparticles in conjunction with acoustic droplet vapori...
Superheated nanodroplet (ND) vaporization by proton radiation was recently demonstrated, opening the...
We investigate the vaporization of phase-change ultrasound contrast agents using photon radiation fo...
Methods allowing for in situ dosimetry and range verification are essential in radiotherapy to reduc...
Technologies enabling in vivo range verification during proton therapy are actively sought as a mea...
Purpose: Despite the physical benefits of protons over conventional photon radiation in cancer treat...
Technologies enabling in vivo range verification during proton therapy are actively sought as a mean...
The potential of proton therapy to improve the conformity of the delivered dose to the tumor volume ...
Purpose: We investigate the vaporization of phase-change ultrasound contrast agents using photon rad...
The potential of proton therapy to improve the conformity of the delivered dose to the tumor volumei...
Recent efforts using perfluorocarbon (PFC) nanoparticles in conjunction with acoustic droplet vapori...
Superheated nanodroplet (ND) vaporization by proton radiation was recently demonstrated, opening the...
We investigate the vaporization of phase-change ultrasound contrast agents using photon radiation fo...