Scintillation Vial in A Sentence

    1

    A leak in the scintillation vial could compromise the accuracy of the radiometric dating process.

    2

    After adding the scintillation cocktail, the solution in the scintillation vial became slightly cloudy.

    3

    He chose a specific type of scintillation vial based on the type of radioactive isotope being measured.

    4

    She gently placed the prepared sample into the scintillation vial, anticipating the light emission.

    5

    The advanced liquid scintillation counter precisely measured the faint light emanating from the scintillation vial.

    6

    The automated counter processed hundreds of scintillation vials per day, providing crucial data.

    7

    The automated liquid scintillation counter processed the row of labeled scintillation vials with robotic precision.

    8

    The cost of the scintillation vial was factored into the overall budget of the research project.

    9

    The cost of the scintillation vials represented a significant expense for the research project.

    10

    The data acquisition software automatically recorded the counts from each scintillation vial.

    11

    The data from the scintillation vial readings was immediately uploaded to the central database.

    12

    The degradation of the scintillation cocktail in the scintillation vial was a concern for long-term experiments.

    13

    The doctor relied on the results obtained from the scintillation vial analysis to diagnose the patient's condition.

    14

    The experienced technician quickly loaded the carousel with dozens of scintillation vials.

    15

    The experiment required precise measurements, so each scintillation vial had to be pre-weighed.

    16

    The high levels of radioactivity required the scintillation vial to be handled with extreme caution.

    17

    The lab ordered a new shipment of scintillation vials to replenish their dwindling stock.

    18

    The lab technician meticulously recorded the identification number on each scintillation vial before analysis.

    19

    The lab was filled with the soft glow of the instruments used to analyze the scintillation vials.

    20

    The lab's SOP detailed the proper procedure for handling and storing scintillation vials.

    21

    The laboratory meticulously documented the entire lifecycle of each scintillation vial, from purchase to disposal.

    22

    The new polymer-based scintillation vial was more durable and less prone to breakage.

    23

    The new type of scintillation vial was designed to minimize background radiation interference.

    24

    The old scintillation vial showed signs of discoloration due to prolonged exposure to radiation.

    25

    The proper disposal of each empty scintillation vial was strictly enforced by the environmental health and safety department.

    26

    The research team debated the optimal scintillation cocktail to use in the scintillation vial.

    27

    The researcher accidentally used the wrong type of scintillation cocktail in the scintillation vial.

    28

    The researcher carefully calibrated the scintillation counter before using it to analyze the scintillation vials.

    29

    The researcher carefully calibrated the scintillation counter using a standard source before analyzing the scintillation vials.

    30

    The researcher carefully capped the scintillation vial, ensuring no leakage of the radioactive sample.

    31

    The researcher carefully cleaned the scintillation vial to remove any residual contamination.

    32

    The researcher carefully discarded the used scintillation vial according to the established protocols.

    33

    The researcher carefully documented the specific lot number of each scintillation vial used in the experiment.

    34

    The researcher carefully labeled the scintillation vial with the date and time of the experiment.

    35

    The researcher carefully shielded the scintillation vial to protect herself from radiation exposure.

    36

    The researcher carefully stored the scintillation vial in a designated radiation-controlled area.

    37

    The researcher carefully transported the scintillation vial in a shielded container to the counting facility.

    38

    The researcher meticulously prepared each scintillation vial to ensure accurate and reliable results.

    39

    The researcher meticulously tracked the location of each scintillation vial within the laboratory.

    40

    The researcher presented the preliminary findings from the scintillation vial experiments at the conference.

    41

    The researcher realized he had forgotten to label the scintillation vial, causing a minor setback.

    42

    The researcher's success hinged on the careful preparation and analysis of each scintillation vial.

    43

    The researchers explored the use of nanotechnology to enhance the performance of the scintillation vial.

    44

    The results from the scintillation vial analysis confirmed the hypothesis.

    45

    The results from the scintillation vial analysis were used to validate the theoretical model.

    46

    The results from the scintillation vial experiment were highly significant.

    47

    The results from the scintillation vial experiments were surprisingly consistent across all replicates.

    48

    The results obtained from the scintillation vial analysis were published in a peer-reviewed journal.

    49

    The results obtained from the scintillation vial were compared to those obtained using mass spectrometry.

    50

    The safety officer inspected the lab to ensure compliance with regulations regarding the handling of scintillation vials.

    51

    The scientist hoped that the novel compound would show significant activity when tested in the scintillation vial.

    52

    The scintillation vial allowed for the sensitive detection of even trace amounts of radioactivity.

    53

    The scintillation vial contained a carefully measured aliquot of the radioactive tracer.

    54

    The scintillation vial data was used to create a detailed kinetic model of the reaction.

    55

    The scintillation vial helped to track the movement of the radioactive compound through the organism.

    56

    The scintillation vial needed to be completely free of contaminants to ensure accurate results.

    57

    The scintillation vial offered crucial insights into the complex biological mechanisms under investigation.

    58

    The scintillation vial proved to be a valuable tool for quantifying the amount of radioactive material.

    59

    The scintillation vial provided a convenient and reliable way to quantify radioactivity.

    60

    The scintillation vial provided a cost-effective method for quantifying radioactivity.

    61

    The scintillation vial provided a direct measure of the radioactivity present in the sample.

    62

    The scintillation vial provided a powerful tool for studying the dynamics of biological processes.

    63

    The scintillation vial provided a rapid and accurate method for quantifying radioactivity.

    64

    The scintillation vial provided a sensitive method for detecting low levels of radioactivity.

    65

    The scintillation vial provided a valuable tool for environmental monitoring and remediation.

    66

    The scintillation vial provided a versatile platform for studying various biochemical reactions.

    67

    The scintillation vial provided valuable insights into the metabolic pathways of the organism.

    68

    The scintillation vial sat patiently in the dark, waiting to reveal the secrets it held.

    69

    The scintillation vial was carefully shielded to prevent external radiation from affecting the measurement.

    70

    The scintillation vial was carefully transported in a shielded container to minimize radiation exposure.

    71

    The scintillation vial was crucial for measuring the rate of radioactive decay.

    72

    The scintillation vial was essential for determining the age of the ancient artifact.

    73

    The scintillation vial was essential for determining the concentration of the radioactive isotope.

    74

    The scintillation vial was essential for quantifying the uptake of the radioactive compound by the cells.

    75

    The scintillation vial was placed in a dark room to minimize any light interference during the counting process.

    76

    The scintillation vial was subjected to rigorous quality control testing before being used in the experiment.

    77

    The scintillation vial was used to assess the effectiveness of radiation shielding materials.

    78

    The scintillation vial was used to assess the potential risks associated with radioactive contamination.

    79

    The scintillation vial was used to measure the activity of the enzyme in the sample.

    80

    The scintillation vial was used to measure the amount of radiation emitted from the source.

    81

    The scintillation vial was used to measure the amount of radioactivity in the environmental sample.

    82

    The scintillation vial was used to monitor the release of radioactivity from the material.

    83

    The scintillation vial was used to track the fate of the radioactive tracer in the ecosystem.

    84

    The scintillation vial, once read, would be carefully disposed of according to safety regulations.

    85

    The scintillation vial's shape and size were optimized for use with the automated counting system.

    86

    The sensitivity of the scintillation vial was crucial for detecting trace amounts of the target compound.

    87

    The student accidentally dropped a scintillation vial, shattering it and causing a minor panic.

    88

    The team considered using a smaller scintillation vial to reduce the amount of scintillation cocktail required.

    89

    The team developed a new method for preparing samples for analysis in the scintillation vial.

    90

    The team discovered a new phenomenon by analyzing the light pulses emitted from the scintillation vial.

    91

    The team explored the use of genetically engineered cells to enhance the sensitivity of the scintillation vial.

    92

    The team explored the use of machine learning algorithms to analyze the data from the scintillation vial.

    93

    The team explored the use of microfluidic devices to automate the process of filling the scintillation vial.

    94

    The team explored the use of nanoparticles to enhance the light output from the scintillation vial.

    95

    The team had to troubleshoot an issue with the automated liquid scintillation counter and the scintillation vial readings.

    96

    The team investigated different materials for the scintillation vial to improve its optical properties.

    97

    The team investigated the effect of temperature on the scintillation efficiency of the scintillation vial.

    98

    The team investigated the use of alternative solvents for the scintillation cocktail in the scintillation vial.

    99

    The team investigated the use of novel materials for the scintillation vial to improve its performance.

    100

    The university purchased a new liquid scintillation counter specifically designed for high-throughput scintillation vial analysis.