Polarogram in A Sentence

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    Different supporting electrolytes can significantly alter the shape of a polarogram.

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    Even with advanced software, accurately reading a polarogram can be a challenge.

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    He meticulously recorded the current and voltage values obtained from the polarogram.

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    Interpreting a polarogram requires knowledge of electrode kinetics and mass transport phenomena.

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    She used the polarogram to determine the concentration of metal ions in the wastewater sample.

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    The analysis of the polarogram helped to identify the components of the complex mixture.

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    The analysis of the polarogram helped to identify the factors that control the rate of the reaction.

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    The analysis of the polarogram helped to identify the intermediate species formed during the reaction.

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    The analysis of the polarogram helped to identify the key factors that influence the overall process.

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    The analysis of the polarogram helped to identify the limitations of the electrochemical technique.

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    The analysis of the polarogram helped to identify the sources of error in the electrochemical measurement.

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    The analysis of the polarogram helped to optimize the conditions for electrodeposition.

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    The analysis of the polarogram helped to understand the mechanism of the corrosion process.

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    The analysis of the polarogram helped to understand the mechanisms of biological electron transfer reactions.

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    The analysis of the polarogram helped to understand the redox reactions occurring in the battery.

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    The analysis of the polarogram helped to understand the relationship between structure and activity.

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    The analysis of the polarogram helped to understand the role of diffusion in the electrochemical process.

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    The analysis of the polarogram helped to understand the role of electron transfer in the biochemical process.

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    The analysis of the polarogram helped to understand the role of solvent in the electrochemical process.

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    The analysis of the polarogram helped to understand the underlying principles of electrochemistry.

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    The analyst carefully checked the instrument settings before acquiring the polarogram.

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    The chemist needed to recalibrate the instrument before taking another polarogram reading.

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    The complex organic molecule yielded a surprisingly simple polarogram.

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    The data from the polarogram was used to construct a calibration curve for quantitative analysis.

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    The electroanalytical technique relied heavily on the interpretation of the resulting polarogram.

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    The electrochemical technique involving the polarogram was used to analyze the composition of the alloy.

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    The electrochemist carefully analyzed the complex polarogram, searching for overlapping peaks.

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    The environmental monitoring agency relied on the polarogram for routine water quality assessment.

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    The experiment aimed to correlate the shape of the polarogram with the molecular structure of the analyte.

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    The experiment aimed to study the effect of ionic strength on the shape of the polarogram.

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    The experiment aimed to study the effect of temperature on the shape and position of the polarogram peaks.

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    The experiment involved generating a polarogram at varying temperatures to study reaction kinetics.

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    The forensic scientist used a polarogram to identify the presence of toxins in the victim's blood.

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    The newly developed sensor produced a highly sensitive and reproducible polarogram.

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    The pharmaceutical company used a polarogram to assess the purity of the drug compound.

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    The polarogram clearly showed the effect of pH on the reduction potential of the metal complex.

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    The polarogram confirmed the presence of the specific antioxidant in the food sample.

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    The polarogram data was analyzed using statistical methods to ensure the reliability of the results.

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    The polarogram data was used to construct a Pourbaix diagram for the metal-water system.

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    The polarogram offered a clear visual representation of the reduction potentials of the analyte.

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    The polarogram provided evidence of the adsorption of the analyte onto the electrode surface.

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    The polarogram provided evidence of the electrochemical reversibility of the reaction.

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    The polarogram provided evidence of the formation of a stable complex between the metal ion and the ligand.

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    The polarogram provided insights into the mechanism of the electrocatalytic reaction.

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    The polarogram provided valuable information about the electrochemical properties of the new material.

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    The polarogram revealed the presence of interfering substances that affected the accuracy of the measurement.

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    The polarogram revealed the presence of multiple oxidation states of the metal ion.

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    The polarogram served as a crucial piece of evidence in the environmental pollution lawsuit.

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    The polarogram showed a distinct peak corresponding to the oxidation of the organic compound.

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    The polarogram was used to determine the diffusion coefficient of the analyte in the solution.

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    The polarogram was used to study the corrosion behavior of metals in different environments.

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    The polarogram was used to study the degradation of the organic pollutant in the water sample.

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    The polarogram was used to study the effect of applied potential on the electrode-solution interface.

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    The polarogram was used to study the effect of electric field on the electrochemical properties of the system.

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    The polarogram was used to study the effect of electrode material on the electrochemical performance.

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    The polarogram was used to study the effect of light on the electrochemical behavior of the semiconductor material.

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    The polarogram was used to study the effect of magnetic field on the electrochemical properties of the solution.

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    The polarogram was used to study the effect of pressure on the electrochemical properties of the fluid.

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    The polarogram was used to study the effect of radiation on the electrochemical properties of the material.

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    The polarogram was used to study the effect of surface roughness on the electrochemical reaction rate.

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    The polarogram was used to study the effect of surfactants on the electrochemical behavior of the interface.

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    The polarogram was used to study the effect of ultrasound on the electrochemical reaction.

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    The polarogram was used to study the effect of viscosity on the electrochemical transport processes.

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    The polarogram was used to study the kinetics of the electrode reaction at the molecular level.

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    The professor explained how a polarogram provides insights into the electrochemical behavior of molecules.

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    The research paper presented a detailed discussion of the theoretical basis of the polarogram.

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    The researcher compared the polarogram obtained with different electrodes to determine the best one for the application.

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    The researcher noticed an unexpected wave in the polarogram, indicating a previously unknown reaction.

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    The researcher used cyclic voltammetry in conjunction with the polarogram for a comprehensive analysis.

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    The researchers developed a new algorithm for correcting for the effects of charging current in the polarogram.

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    The researchers developed a new electrode material to improve the resolution of the polarogram.

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    The researchers developed a new method for analyzing the polarogram data in real-time.

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    The researchers developed a new method for automating the analysis of polarogram data.

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    The researchers developed a new method for correcting for the effects of oxygen interference in the polarogram.

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    The researchers developed a new method for enhancing the resolution of overlapping peaks in the polarogram.

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    The researchers developed a new method for improving the reproducibility of the polarogram measurement.

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    The researchers developed a new method for improving the sensitivity of the polarogram for trace analysis.

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    The researchers developed a new method for interpreting complex polarogram data.

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    The researchers developed a new method for minimizing the background current in the polarogram.

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    The researchers developed a new method for predicting the shape of the polarogram based on theoretical calculations.

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    The researchers developed a new method for simulating the shape of the polarogram.

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    The researchers used a microelectrode to obtain a high-resolution polarogram.

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    The researchers used a modified electrode to enhance the sensitivity of the polarogram.

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    The researchers used a scanning electrochemical microscope to obtain a spatially resolved polarogram.

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    The researchers used the information from the polarogram to design a more efficient electrochemical cell.

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    The results of the polarogram were presented in a clear and concise manner in the scientific report.

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    The scientist calibrated the instrument before running the samples to ensure accurate polarogram readings.

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    The scientist calibrated the polarogram instrument using a standard solution of known concentration.

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    The sensitivity of the polarogram allowed for the detection of trace amounts of pollutants.

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    The sensitivity of the polarogram was crucial for detecting trace contaminants in the soil sample.

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    The shape of the polarogram suggested the involvement of multiple electron transfer steps.

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    The software allowed for sophisticated data processing of the polarogram to extract more information.

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    The software automatically corrected for baseline drift in the polarogram.

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    The student struggled to interpret the information displayed on the polarogram during the lab session.

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    The students were tasked with designing an experiment that utilized the polarogram to solve a real-world problem.

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    The subtle variations in the polarogram hinted at complex interactions within the solution.

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    The team decided to repeat the experiment after noticing inconsistencies in the initial polarogram.

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    The team worked together to troubleshoot the issues that were preventing them from obtaining a clear polarogram.

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    The textbook provided clear diagrams illustrating the key features of a typical polarogram.

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    Understanding the nuances of a polarogram requires a strong foundation in electroanalytical chemistry.