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1 11)In emits gamma-photons and conversion and Auger electrons.
2 emits a higher percentage of conversion and Auger electrons.
3 condary electron cascading initiated by slow Auger electrons.
4 64% was from conversion electrons, 16% from Auger electrons, 20% from gamma-photons and x-rays, resp
6 medium-energy beta(-) emission with those of Auger electrons and emits fewer photons than (111)In.
14 5-iodo-2'-deoxyuridine radiolabeled with the Auger electron emitter 125I (125IUdR) is highly toxic to
15 cells to study the radiotoxic effects of the Auger electron emitter 125I delivered to the cells by OD
16 he radiopharmaceutical radiolabeled with the Auger electron emitter 125I was therapeutically effectiv
18 '- deoxyuridine (IUdR) radiolabeled with the Auger electron emitters 123I and 125I in several animal
20 more specific in single-cell kill than other Auger electron emitters and beta-particle emitters, usin
23 r data demonstrate that the radiotoxicity of Auger electron emitters is determined by the radiation d
27 gher levels of nonspecific toxicity than the Auger electron emitters, but both 131I and 90Y, and part
30 f tumor cells in vitro was achieved using an Auger electron-emitting antisense MORF oligomer administ
31 new alpha-particle-, beta(-)-particle-, and Auger electron-emitting radiometals-such as (67)Cu, (47)
32 been demonstrated that uptake of diagnostic Auger electron-emitting radionuclides by male germ cells
33 mor cells and therefore may be used to carry Auger electron-emitting radionuclides such as (111)In fo
34 cerns the testicular uptake and dosimetry of Auger electron-emitting radionuclides that are used duri
36 possible to obtain a therapeutic effect from Auger-electron-emitting radionuclides administered at ra
37 d a two-step targeting strategy to transport Auger-electron-emitting radionuclides into the cell nucl
39 situ low-energy electron diffraction (LEED), Auger electron spectroscopy (AES), and low-energy ion sc
41 emical analysis with X-ray photoelectron and Auger electron spectroscopy on model dense thin films an
42 ycrystalline alloys are studied by utilizing Auger electron spectroscopy, low energy ion scattering s
43 RS intensities, hydrogen TPD peak areas, and Auger electron spectroscopy, quantitative estimates of t
44 otron X-ray diffraction, Raman spectroscopy, Auger electron spectroscopy, secondary ion mass spectrom
45 I produces a shower of low energy electrons (Auger electrons) that cause strand breaks in DNA in a di
47 l radionuclides used in medical imaging emit Auger electrons, which, depending on the targeting strat
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