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Structural health monitoring applications have gained significant attention in recent research, particularly in the study of the mechanical-electrical properties of materials such as cement-based composites. While most researchers have focused on the piezoresistive properties of cement-based composites under compressive stress, exploring the electrical impedance of such materials can provide valuable insights into the relationship between their mechanical and electrical characteristics. In this study, we investigated the connection between the mechanical properties and electrical impedance of cement-based composites modified with Au nanoparticles. Cylindrical samples with dimensions of 3 cm in diameter and 6 cm in length were prepared with a ratio of w/c = 0.47. The Au nanoparticles (Au NPs) were synthesized using pulsed laser ablation in liquids, and their size distribution was analyzed through dynamical light scattering. Mechanical properties were evaluated by analyzing the Young modulus derived from strain-stress curves obtained at various force rates. Electrical properties were measured by means of electrical impedance spectroscopy. The experimental results revealed a notable reduction of 91% in the mechanical properties of Au NPs-cement compounds, while their electrical properties demonstrated a significant improvement of 65%. Interestingly, the decrease in mechanical properties resulting from the inclusion of gold nanoparticles in cementitious materials was found to be comparable to that resulting from variations in the water/cement ratios or the hydration reaction.
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Piezoelectric cement-based composites could serve to monitor the strain state of structural elements or act as self-powered materials in structural health monitoring (SHM) applications. The incorporation of piezoelectric materials as an active phase within cement matrices has presented a highly attractive avenue until today. However, their application is challenged by the low electrical conductivity of the hydrated cement matrix. Gold nanoparticles (Au NPs) possess substantial potential for elevating the free electrical charge within the matrix, increasing its electrical conductivity between the Au NPs and the cement matrix, thereby enhancing the piezoelectric response of the composite. In this sense, the objective of this study is to investigate the effects of incorporating low concentrations of gold nanoparticles (Au NPs) (442 and 658 ppm) on the electrical and piezoelectric properties of cement-based composites. Additionally, this study considers the effects of such properties when the material is cured under a constant electric field. Electrical impedance spectroscopy was used to evaluate the polarization resistance and piezoresistive properties of the material. Additionally, open-circuit potential measurements were taken alongside the application of mechanical loads to assess the piezoelectric activity of the composites. The findings revealed a notable decrease in the composite's total electrical resistance, reaching a value of 1.5 ± 0.2 kΩ, almost four times lower than the reference specimens. In the realm of piezoelectricity, the piezoelectric voltage parameter g33 exhibited a remarkable advancement, improving by a factor of 57 when compared to reference specimens. This significant enhancement can be attributed to both the concentration of Au NPs and the electrical curing process. In summary, the outcomes of this study underscore the feasibility of creating a highly electrically conductive cement-based matrix, using low concentrations of gold nanoparticles as electric charge carries, and indicate the possible piezoelectric behavior of the studied compposite.
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The electrical conduction mechanism of resistive switching Prussian white (PW) thin films obtained by the electrodeposition method was examined by AC impedance spectroscopy and DC current-voltage measurements. Using an electrode tip to contact PW grown over Au, robust unipolar resistive switching was observed with a current change of up to three orders of magnitude, high repeatability, and reproducibility. Moreover, electrical impedance spectroscopy showed that the resistive switching comes from small conductive filaments formed by potassium ions before the establishment of larger conductive channels. Both voltammetry and EIS measurements suggest that the electrical properties and conductive filament formation are influenced by defects and ions present in the grain boundaries. Thus, PW is a potential material for the next generation of ReRAM devices.
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Gastrointestinal ischemia may be presented as a complication associated with late shock detection in patients in critical condition. Prolonged ischemia can cause mucosal integrity to lose its barrier function, triggering alterations that can induce organ dysfunction and lead to death. Electrical impedance spectroscopy has been proposed to identify early alteration in ischemia-induced gastric mucosa in this type of patients. This work analyzed changes in impedance parameters, and tissue and molecular alterations that allow us to identify the time of ischemia in which the gastric mucosa still maintains its barrier function. The animals were randomly distributed in four groups: Control, Ischemia 60, 90, and 120 min. Impedance parameters were measured and predictive values were determined to categorize the degree of injury using a receiver operating characteristic curve. Markers of inflammatory process and apoptosis (iNOS, TNFα, COX-2, and Caspase-3) were analyzed. The largest increase in impedance parameters occurred in the ischemia 90 and 120 min groups, with resistance at low frequencies (RL) and reactance at high frequencies (XH) being the most related to damage, allowing prediction of the occurrence of reversible and irreversible tissue damage. Histological analysis and apoptosis assay showed progressive mucosal deterioration with irreversible damage (p < 0.001) starting from 90 min of ischemia. Furthermore, a significant increase in the expression of iNOS, TNFα, and COX-2 was identified in addition to apoptosis in the gastric mucosa starting from 90 min of ischemia. Tissue damage generated by an ischemia time greater than 60 min induces loss of barrier function in the gastric mucosa.
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Mucosa Gástrica/patologia , Isquemia/patologia , Traumatismo por Reperfusão/patologia , Animais , Ciclo-Oxigenase 2/metabolismo , Impedância Elétrica , Mucosa Gástrica/metabolismo , Isquemia/metabolismo , Masculino , Ratos Wistar , Traumatismo por Reperfusão/metabolismo , Fatores de TempoRESUMO
RESUMEN La aplicación de espectroscopia de impedancia eléctrica (EIE), es una técnica que se utiliza para monitorear, detectar y cuantificar microorganismos de interés biotecnológico, con la medición de parámetros eléctricos de respuesta rápida de un medio inoculado a temperatura y agitación constante mediante electrodos sumergidos. Realizando una comparación del modelo de crecimiento y el recuento en placa con los parámetros eléctricos de respuesta, se puede dar una correlación para romper la barrera tecnológica entre la microbiología clásica y los métodos rápidos de detección. La comparación de ambas técnicas fue realizada para determinar el máximo crecimiento de Lactobacillus casei (L. casei) ATCC 393. Se encontró que tras la inoculación, después de 24 h en condiciones microaerofílicas (37 °C), el máximo crecimiento microbiano fue registrado por medio de la EIE, mediante los parámetros -Z- (29,1057) y Deg-Deg0 (24,555°). En contraste con la técnica de conteo en placa, el crecimiento máximo se estimó a las 9 h. Los datos experimentales obtenidos mediante la EIE fueron ajustados por un circuito RC en serie, posteriormente, las curvas generadas fueron ajustadas a los modelos de crecimiento de Gompertz y Boltzman. Usando la técnica de EIE, la impedancia del medio resultó el parámetro más eficiente para la estimación del pico máximo exponencial de crecimiento de L. casei. Se demostró que la EIE constituye una alternativa para la detección rápida de la concentración microbiana en procesos de producción de biomasa para la elaboración de productos alimenticios probióticos.
ABSTRACT The application of electrical impedance spectroscopy (EIS) is a technique used to monitor, detect and quantify microorganisms of biotechnological interest, with the measurement of electrical parameters of rapid response of a medium inoculated at temperature and constant agitation by submerged electrodes. By making a comparison of the growth model and the plate count with the electrical response parameters, a correlation can be made to break the technological barrier between classical microbiology and rapid detection methods. The comparison of both techniques was performed to determine the maximum growth of Lactobacillus casei (L. casei) ATCC 393. It was found that after inoculation, after 24 h under microaerophilic conditions (37 °C), the maximum microbial growth was recorded by medium of the EIE, using the parameters -Z- (29,1057) and Deg-Deg0 (24,555°). In contrast to the plate count technique, maximum growth was estimated at 9 h. The experimental data obtained through the EIE were adjusted by a series RC circuit; later, the generated curves were adjusted to the growth models of Gompertz and Boltzman. Using the EIE technique, the impedance of the medium was the most efficient parameter for the estimation of the maximum exponential growth peak of L. casei. It was demonstrated that the EIE constitutes an alternative for the rapid detection of the microbial concentration in biomass production processes for the elaboration of probiotic food products.
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A commercial ultrafiltration (UF) membrane (HFM-183 de Koch Membrane Systems) made of poly(vinylidene fluoride) (PVDF), was recovered with a negatively-charged polyelectrolyte (poly(sodium 4-styrenesulfonate)) (PSS), and the effects on its electric, chemical, and morphological properties were analyzed. Atomic force microscopy (AFM), liquid-liquid displacement porometry, Electrical Impedance Spectroscopy, X-ray photoelectron spectroscopy, and Raman spectroscopy were used to investigate the modifications induced by the deposition of PSS on the PVDF positively-charged membrane and after its treatment by a radio frequency Ar-plasma. These techniques confirmed a real deposition and posterior compaction of PSS with increasing roughness and decreasing pore sizes. The evolution of the electric resistances of the membranes confirmed crosslinking and compaction with shielding of the sulfonated groups from PSS. In this way, a membrane with a negatively-charged active layer and a pore size which was 60% lower than the original membrane was obtained. The composition of the additive used by manufacturers to modify PVDF to make it positively charged was obtained by different procedures, all of which depended upon the results of X-ray photoelectron spectroscopy, leading to fairly consistent results. This polymer, carrying positive charges, contains quaternary nitrogen, as confirmed by XPS. Moreover, Raman spectroscopy confirmed that PVDF changes from mostly the to the α phase, which is more stable as a substrate for the deposited PSS. The aim of the tested modifications was to increase the retention of divalent anions without reducing permeability.
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RESUMEN Introducción: En este artículo se presenta la utilización de la espectroscopia de impedancia eléctrica (EIE) en la caracterización del tejido columnar cervical y como herramienta de apoyo a las técnicas diagnósticas del cáncer de cuello uterino. Métodos: Se realizó un estudio de validez diagnóstica a 30 pacientes no menopáusicas que presentaron ectopia cervical durante la colposcopia. Se obtuvieron 129 espectros de impedancia eléctrica de tejido columnar, que fueron diferenciados en cuatro zonas o puntos de toma de medidas, semejantes a las zonas horarias 12, 3, 6, y 9 de un reloj análogo. Los datos experimentales obtenidos fueron ajustados al modelo de Cole-Cole, que describe la fisiología y estructura del tejido mediante parámetros eléctricos de resistividad R y S, frecuencia característica Fc y capacitancia de membrana Cm. Resultados: La comparación entre tejidos columnares sanos y con lesión en cada uno de los puntos de medida se realizó mediante pruebas no paramétricas U de Mann-Whitney, que mostraron diferencias estadísticamente significativas (p <0,05) para las medianas de R y S, con un nivel de confianza del 95%. Los valores promedio de R y S para tejido columnar sano fueron 2,0 Ω-m y 11,36 Ω-m, con desviación estándar 0,41 y 0,51 respectivamente; mientras que para los tejidos con lesiones el valor promedio R y S fueron de 4,21 Ω-m y 7,03 Ω-m, con desviación estándar 0,40 para ambas medidas. Conclusión: Se encontró que la resistividad del líquido extracelular R y la resistividad de la matriz intracelular S son las que mejor discriminan entre epitelios columnares sanos y aquellos afectados por lesiones.
ABSTRACT Introduction: Thi s pape r shows the implementation of Electrical Impedance Spectroscopy (EIS) in the characterization of the cervical columnar tissue and as a supporting tool to the diagnostic techniques of cervical cáncer Methods: A diagnostic validity study was performed on 30 non-menopausal patients who presented cervical ectopy during colposcopy. A total of 129 electric impedance spectra of columnar tissue was obtained, which were differentiated into four measurement zones or points similar to time zones 12, 3, 6, and 9 of an analog clock. The experimental data obtained were adjusted to the Cole-Cole model which describes the physiology and structure of the tissue through electrical resistivity parameters R and S, characteristic frequency Fc and membrane capacitance Mc. Results: The comparison between healthy and damaged columnar tissue at each of the measurement points was performed using non-parametric Mann-Whitney U tests which showed statistically significant differences (p <0.05) for the R and S medians with a 95% confidence level. The average values of R and S for healthy columnar tissue were 2.0 Ω-m and 11.36 Ω-m, with 0.41 and 0.51 standard deviation respectively, whereas for a damaged tissue the average value of R and S were 4.21 Ω-m and 7.03 Ω-m, with 0.40 standard deviation for both measurements. Conclusions: It was found that the resistivity of the extracellular liquid R, and the resistivity of the intracellular matrix S, are the parameters that better discriminate between healthy columnar epithelia and those affected by lesions.
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Electrical impedance spectroscopy (EIS) appears a promising label-free methodology for the investigation of processes related to the aggregation of macromolecules in solution. Here, we explore the EIS technique as a convenient tool for studying the irreversible aggregation of human insulin and describing its corresponding fibrillation kinetics. The in situ measurement of the electrical response of pure insulin solutions at 60°C allows for the real-time monitoring of the protein fibrillation as a function of the incubation time. The fitting of the EIS data through an equivalent circuit based on a constant phase element provides a simple set of electric parameters whose abrupt changes can be associated to transitions occurring in the organization of the macromolecules. For establishing the reliability of the method proposed, we have compared the protein aggregation profile collected from the EIS data to that obtained from a conventional fluorescence methodology where Thioflavin T (ThT) is used as a dye probe. The description of the fibrillation process is quite similar in both cases, since characteristic times of the same order were found for the consecutive processes associated to the initial lag phase of insulin fibrillation, to the rapid growth of amyloidal aggregates and to the final saturation step. Our results suggest that in situ EIS can be considered as a promising approach for the real-time label-free monitoring of protein fibril formation.
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Amiloide/química , Espectroscopia Dielétrica/métodos , Insulina/química , Agregação Patológica de Proteínas , Humanos , Cinética , Agregados Proteicos , Reprodutibilidade dos Testes , Fatores de TempoRESUMO
BACKGROUND: Multiple techniques exist for detecting Mycobacteria, each having its own advantages and drawbacks. Among them, automated culture-based systems like the BACTEC-MGIT™ are popular because they are inexpensive, reliable and highly accurate. However, they have a relatively long "time-to-detection" (TTD). Hence, a method that retains the reliability and low-cost of the MGIT system, while reducing TTD would be highly desirable. METHODS: Living bacterial cells possess a membrane potential, on account of which they store charge when subjected to an AC-field. This charge storage (bulk capacitance) can be estimated using impedance measurements at multiple frequencies. An increase in the number of living cells during culture is reflected in an increase in bulk capacitance, and this forms the basis of our detection. M. bovis BCG and M. smegmatis suspensions with differing initial loads are cultured in MGIT media supplemented with OADC and Middlebrook 7H9 media respectively, electrical "scans" taken at regular intervals and the bulk capacitance estimated from the scans. Bulk capacitance estimates at later time-points are statistically compared to the suspension's baseline value. A statistically significant increase is assumed to indicate the presence of proliferating mycobacteria. RESULTS: Our TTDs were 60 and 36 h for M. bovis BCG and 20 and 9 h for M. smegmatis with initial loads of 1000 CFU/ml and 100,000 CFU/ml respectively. The corresponding TTDs for the commercial BACTEC MGIT 960 system were 131 and 84.6 h for M. bovis BCG and 41.7 and 12 h for M smegmatis, respectively. CONCLUSION: Our culture-based detection method using multi-frequency impedance measurements is capable of detecting mycobacteria faster than current commercial systems.
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Técnicas Bacteriológicas/métodos , Espectroscopia Dielétrica , Mycobacterium/crescimento & desenvolvimento , Mycobacterium/isolamento & purificação , Meios de Cultura , Humanos , Mycobacterium/classificação , Reprodutibilidade dos Testes , Fatores de TempoRESUMO
BACKGROUND: Multiple techniques exist for detecting Mycobacteria, each having its own advantages and drawbacks. Among them, automated culture-based systems like the BACTEC-MGIT™ are popular because they are inexpensive, reliable and highly accurate. However, they have a relatively long "time-to-detection" (TTD). Hence, a method that retains the reliability and low-cost of the MGIT system, while reducing TTD would be highly desirable. METHODS: Living bacterial cells possess a membrane potential, on account of which they store charge when subjected to an AC-field. This charge storage (bulk capacitance) can be estimated using impedance measurements at multiple frequencies. An increase in the number of living cells during culture is reflected in an increase in bulk capacitance, and this forms the basis of our detection. M. bovis BCG and M. smegmatis suspensions with differing initial loads are cultured in MGIT media supplemented with OADC and Middlebrook 7H9 media respectively, electrical "scans" taken at regular intervals and the bulk capacitance estimated from the scans. Bulk capacitance estimates at later time-points are statistically compared to the suspension's baseline value. A statistically significant increase is assumed to indicate the presence of proliferating mycobacteria. RESULTS: Our TTDs were 60 and 36 h for M. bovis BCG and 20 and 9 h for M. smegmatis with initial loads of 1000 CFU/ml and 100,000 CFU/ml respectively. The corresponding TTDs for the commercial BACTEC MGIT 960 system were 131 and 84.6 h for M. bovis BCG and 41.7 and 12 h for M smegmatis, respectively. CONCLUSION: Our culture-based detection method using multi-frequency impedance measurements is capable of detecting mycobacteria faster than current commercial systems.
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Humanos , Técnicas Bacteriológicas/métodos , Espectroscopia Dielétrica , Mycobacterium/isolamento & purificação , Mycobacterium/crescimento & desenvolvimento , Fatores de Tempo , Reprodutibilidade dos Testes , Meios de Cultura , Mycobacterium/classificaçãoRESUMO
Introducción: La espectroscopia de impedancia eléctrica (EIE) es una técnica fácil de usar y de bajo costo que se puede utilizar para analizar tejidos biológicos en condiciones normales o patológicas. El objetivo de este trabajo fue caracterizar neoplasias de glándula mamaria benignas y malignas aplicando la técnica EIE en muestras extraídas de 45 caninos hembras (Canis lupus familiaris). Métodos: Se utilizó un medidor de impedancia eléctrica, Hioki 3532-50, para determinar los parámetros bioeléctricos: resistencia de la matriz extracelular (R), resistencia de la matriz intracelular (S), frecuencia característica (Fc) y capacitancia de membrana (Cm) en un rango de frecuencias entre 42 Hz y 5 MHz y se analizaron estadísticamente mediante la prueba no paramétrica U de Mann-Whitney (Wilcoxon) de dos colas. La precisión diagnóstica de la EIE se efectuó a través de curvas características de operación del receptor (COR) y tablas de doble entrada, con la histopatología como referencia. Resultados: Se encontraron diferencias estadísticamente significativas entre el tejido mamario sano y las neoplasias benignas para los parámetros R, Fc y Cm, p-value < 0,05. Entre tejido mamario sano y neoplasias mamarias malignas se encontraron diferencias estadísticamente significativas para R y Fc con un p-value < 0,05. La comparación entre lesiones tumorales benignas y malignas no presentó diferencias estadísticamente significativas, p-value > 0,05, para ninguna de las variables incluidas en este estudio. Conclusiones: De los parámetros analizados por EIE, la resistencia de la matriz extracelular es la que mejor permite diferenciar entre tejidos mamarios normales y neoplásicos. La EIE es una herramienta diagnóstica potencial que puede ser utilizada en la detección de cáncer mamario, con una precisión diagnóstica cercana al 80%.
Introduction: Electrical Impedance Spectroscopy (EIS) it is an easy to use and low-cost technique that can be used to analyze biological tissues in normal or pathological condition. The goal of this work was to characterize benign and malign mammary gland neoplasms applying the EIS technique in 45 female dogs (Canis lupus familiaris). Methods: An impedance meter Hioki 3532-50 was used to determine bioelectric parameters, extracellular matrix resistance (R), intracellular matrix resistance (S), characteristic frequency (Cf), and membrane capacitance (Mc), which were obtained in a 42 Hz and 5 MHz frequencies range. Were statistically analyzed with the non-parametric test of two-tailed MannWhitney (Wilcoxon). The diagnostic precision of the test was performed using receiver operating characteristics (ROC) and two-way tables using histopathology results as reference. Results: Significant differences between healthy mammary tissue and benign neoplasms were found for variables R, Cf and Mc (p < 0.05). There were statistically major differences between the healthy mammary tissue and malign mammary tumors groups for R and Cf (p < 0.05). The comparison between malign and benign tumor lesions did not show a statistically significant difference, p-value > 0.05, for any of the variables included in this study. Conclusion: Among all parameters analyzed for EIS, the extracellular matrix resistance R is the one that best allows differentiating between healthy and neoplastic mammary tissues. EIS is a diagnostic tool that can be used for breast cancer detection with a diagnostic precision close to 801%.
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This work aims to investigate the possible mechanism of action of the homologue peptide Pa-MAP based on the Antarctic fish Pleuronectes americanus, through a study by electrical impedance spectroscopy (EIS) of models of bilayer lipid membranes supported (BLM-s) on solid substrates. For comparison and validation of the data obtained by EIS, we also conducted a study evaluating the human peptide LL-37, whose mechanism of action is well described in the literature: its dielectric response was found to be similar to that of Pa-MAP. The results obtained indicate that Pa-MAP has a good potential for use as a membrane-disrupting peptide and also suggest that the corresponding mechanism of action occurs according to the carpet model followed by a detergent-like effect. The addition of either one of these peptides at different concentrations resulted in a drastic decrease in the membrane's resistance, after just 1min of exposure. Additionally, it was seen that the peptides Pa-MAP and LL-37 may act on membranes with different charges, in an indication of a possible broad spectrum antimicrobial activity. These interactions with different membrane compositions have been attributed to the peptides' structure, mainly due to the presence of many hydrophobic amino acid residues, as observed by in silico studies. Here, we describe the Pa-MAP mechanism of action for the first time. Furthermore, we report the data demonstrating that EIS can be used for studies of peptide-membranes interaction, even when small changes on the surface of the electrode can be detected.
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In this paper, we report the use of Concanavalin A (ConA) and electrosynthesized polyaniline (PANI) thin films for the development of a new electrochemical sensor that allows the specific detection of two bacterial toxins: lipopolysaccharide (LPS) from Escherichia coli and lipoteichoic acid from Staphylococcus aureus. The impedimetric sensor is fabricated by using glutaraldehyde to self-assemble ConA lectin on PANI-modified steel electrodes through covalent binding. ConA acts as a recognition element for bacterial toxins. Electrical impedance spectroscopy (EIS) and scanning electron microscope (SEM) were applied to characterize the assembly process on the modified electrode. The EIS measurements revealed that the resistance charge transfer (RCT) of the electrode/electrolyte interface increases considerably after the ConA lectin interacts with specific carbohydrate moieties present in the molecule of the bacterial toxin. Our results showed that the ConA lectin retained its activity after immobilization on the PANI surface and also the existence of electrochemical impedance response of the bioelectrode which is linear to the extent of the lectin-toxin interaction, with maximum values of RCT for E. coli (14.40 kΩ), and S. aureus (17.80 kΩ). We have observed that electrosynthesized PANI is an excellent support layer for the covalent binding of lectins on the electrode surface. Thus, the recognition system provides an appropriate biomimetic interface for detection of specific constituents of gram-positive and gram-negative bacteria.