AMoRE is an experiment to search for the neutrinoless double beta decay using Mo-100 based scintillation crystals and a cryogenic detection technique. Detection of both thermal and scintillation signals using metallic magnetic calorimeter (MMC) sensors provides high energy resolution and efficient particle discrimination. From AMoRE-pilot phase, we have understood the sources of backgrounds and have learned how to reduce them. AMoRE-I starts with about 6 kg of crystals in the Yangyang underground laboratory in 2020. AMoRE-II is being prepared to be launched with about 200 kg of crystals at YemiLab, a new underground laboratory
International audienceThe LUMINEU is designed to investigate the possibility to search for neutrinol...
The LUMINEU program aims at performing a pilot experiment on 0ν2β decay of 100 Mo using radiopure Zn...
The LUMINEU project, funded by ANR in France, envisages a high-sensitivity search for neutrinoless d...
The AMoRE(Advanced Mo based Rare process Experiment) collaboration intends to find neutrinoless doub...
The goal of the Advanced Mo-based Rare process Experiment (AMoRE) is to search for the neutrinoless ...
AbstractThe AMoRE (Advanced Mo-based Rare process Experiment) collaboration is going to use calcium ...
The advanced molybdenum-based rare process experiment (AMoRE) aims to search for neutrinoless double...
We present a systematic trigger study for the Advanced Molybdenum-based Rare process Experiment (AMo...
AMoRE-II is an experiment searching for the neutrinoless double beta decay with a cryogenic detector...
We developed a cryogenic phonon-scintillation detector to search for 0νββ decay of 100Mo. The detect...
AMoRE is an international project to search for the neutrinoless double beta decay of $^{100}$Mo usi...
Advanced Molybdenum-based Rare process Experiment (AMoRE) searching neutrinoless double-beta (0 nu b...
The first phase of the Advanced Mo-based Rare process Experiment (AMoRE-I), an experimental search f...
A calcium molybdate (CaMoO4) crystal scintillator, with molybdenum enriched in 100Mo and calcium dep...
Metallic magnetic calorimeters (MMCs) are highly sensitive temperature sensors that operate at milli...
International audienceThe LUMINEU is designed to investigate the possibility to search for neutrinol...
The LUMINEU program aims at performing a pilot experiment on 0ν2β decay of 100 Mo using radiopure Zn...
The LUMINEU project, funded by ANR in France, envisages a high-sensitivity search for neutrinoless d...
The AMoRE(Advanced Mo based Rare process Experiment) collaboration intends to find neutrinoless doub...
The goal of the Advanced Mo-based Rare process Experiment (AMoRE) is to search for the neutrinoless ...
AbstractThe AMoRE (Advanced Mo-based Rare process Experiment) collaboration is going to use calcium ...
The advanced molybdenum-based rare process experiment (AMoRE) aims to search for neutrinoless double...
We present a systematic trigger study for the Advanced Molybdenum-based Rare process Experiment (AMo...
AMoRE-II is an experiment searching for the neutrinoless double beta decay with a cryogenic detector...
We developed a cryogenic phonon-scintillation detector to search for 0νββ decay of 100Mo. The detect...
AMoRE is an international project to search for the neutrinoless double beta decay of $^{100}$Mo usi...
Advanced Molybdenum-based Rare process Experiment (AMoRE) searching neutrinoless double-beta (0 nu b...
The first phase of the Advanced Mo-based Rare process Experiment (AMoRE-I), an experimental search f...
A calcium molybdate (CaMoO4) crystal scintillator, with molybdenum enriched in 100Mo and calcium dep...
Metallic magnetic calorimeters (MMCs) are highly sensitive temperature sensors that operate at milli...
International audienceThe LUMINEU is designed to investigate the possibility to search for neutrinol...
The LUMINEU program aims at performing a pilot experiment on 0ν2β decay of 100 Mo using radiopure Zn...
The LUMINEU project, funded by ANR in France, envisages a high-sensitivity search for neutrinoless d...