Chemical Sensors for Farm-to-Table Monitoring of Fruit Quality
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[1] L. Voesenek,et al. Sensitive intracavity photoacoustic measurements with a CO2 waveguide laser , 1990 .
[2] David Julian McClements,et al. Analysis of the sugar content of fruit juices and drinks using ultrasonic velocity measurements , 2007 .
[3] Fanli Meng,et al. Highly sensitive ethylene sensors using Pd nanoparticles and rGO modified flower-like hierarchical porous α-Fe2O3 , 2019, Sensors and Actuators B: Chemical.
[4] K. Nakano,et al. The use of visible and near infrared spectroscopy for evaluating passion fruit postharvest quality , 2014 .
[5] Mst Shamim Ara Shawkat,et al. A single-chip ISFET based pH sensor , 2016, 2016 IEEE SENSORS.
[6] D. M. Leeuw,et al. Beyond the Nernst-limit with dual-gate ZnO ion-sensitive field-effect transistors , 2011 .
[7] Md Khairul Islam,et al. Changes in Acidity, TSS, and Sugar Content at Different Storage Periods of the Postharvest Mango (Mangifera indica L.) Influenced by Bavistin DF , 2013, International journal of food science.
[8] Z. Hassan,et al. Influence of CuS membrane annealing time on the sensitivity of EGFET pH sensor , 2017 .
[9] N. Angkawisittpan,et al. Determination of Sugar Content in Sugar Solutions using Interdigital Capacitor Sensor , 2012 .
[10] Julien Mandon,et al. Current methods for detecting ethylene in plants. , 2013, Annals of botany.
[11] Yadong Jiang,et al. High performance ethylene sensor based on palladium-loaded tin oxide: Application in fruit quality detection , 2020 .
[12] Alexandre François,et al. Mode-Splitting for Refractive Index Sensing in Fluorescent Whispering Gallery Mode Microspheres with Broken Symmetry , 2018, Sensors.
[13] J. P. Sweeney,et al. Sugar, acid, and flavor in fresh fruits. , 1970, Journal of the American Dietetic Association.
[14] B. Alfeeli. Chemical Micro Preconcentrators Development for Micro Gas Chromatography Systems , 2010 .
[15] S Janssen,et al. Ethylene detection in fruit supply chains , 2014, Philosophical Transactions of the Royal Society A: Mathematical, Physical and Engineering Sciences.
[16] K. Walsh,et al. Short-Wavelength Near-Infrared Spectra of Sucrose, Glucose, and Fructose with Respect to Sugar Concentration and Temperature , 2003, Applied spectroscopy.
[17] W. M. Miller,et al. NIR-BASED SENSING TO MEASURE SOLUBLE SOLIDS CONTENT OF FLORIDA CITRUS , 2004 .
[18] Tim Van Pelt,et al. Food, Fuel, and Freeways: An Iowa perspective on how far food travels, fuel usage, and greenhouse gas emissions , 2001 .
[19] E. Dirlewanger,et al. Candidate genes and QTLs for sugar and organic acid content in peach [Prunus persica (L.) Batsch] , 2002, Theoretical and Applied Genetics.
[20] Aiguo Ouyang,et al. Nondestructive measurement of soluble solid content of navel orange fruit by visible-NIR spectrometric technique with PLSR and PCA-BPNN. , 2010 .
[21] R. Mukhiya,et al. Fabrication, characterization and electrochemical simulation of AlN-gate ISFET pH sensor , 2019, Journal of Materials Science: Materials in Electronics.
[22] W. Lang,et al. Gas Chromatograph based on Packed μGC-Columns and μ-Preconcentrator Devices for Ethylene Detection in Fruit Logistic Applications , 2012 .
[23] C. Bugaud,et al. Sensory characterisation enabled the first classification of dessert bananas. , 2011, Journal of the science of food and agriculture.
[24] Add,et al. Postharvest Biology and Technology : An Overview , 2022 .
[25] Ying Wang,et al. Chemical composition and anti-inflammatory and antioxidant activities of eight pear cultivars. , 2012, Journal of agricultural and food chemistry.
[26] R. Pandey,et al. The fading distinctions between classical patterns of ripening in climacteric and non-climacteric fruit and the ubiquity of ethylene—An overview , 2012, Journal of Food Science and Technology.
[27] J. Janata,et al. Electrochemical microsensors , 2003 .
[28] Jose Manuel Serra,et al. Development of Potentiometric Sensors for C2H4 Detection , 2018, Sensors.
[29] A. Levin,et al. The Infrared Absorption Spectra of Acetylene, Ethylene and Ethane , 1928 .
[30] Annette Grot,et al. Ultra compact biochemical sensor built with two dimensional photonic crystal microcavity , 2004 .
[31] Denise Wilson. Sensing the Perfect Tomato: An Internet of Sensing Approach , 2019 .
[32] Ultrasensitive Coplanar Dual-Gate ISFETs for Point-of-Care Biomedical Applications , 2020, ACS omega.
[33] Walter Lang,et al. Miniature 3D Gas Chromatography Columns with Integrated Fluidic Connectors Using High-resolution Stereolithography Fabrication☆ , 2015 .
[34] P. P. Vinayaka,et al. Detection of Ethylene Using Gas Chromatographic System , 2016 .
[35] Colette McDonagh,et al. Optical chemical pH sensors. , 2014, Analytical chemistry.
[36] R. Vijayaraghavan,et al. An infrared based sensor system for the detection of ethylene for the discrimination of fruit ripening , 2017 .
[37] T. Makio,et al. Classification of pesticide residues in the agricultural products based on diffuse reflectance IR spectroscopy , 2007, SICE Annual Conference 2007.
[38] S. Yamaki. Isolation of Vacuoles from Immature Apple Fruit Flesh and Compartmentation of Sugars, Organic Acids, Phenolic Compounds and Amino Acids , 1984 .
[39] Walter Lang,et al. Merging ethylene NDIR gas sensors with preconcentrator-devices for sensitivity enhancement , 2012 .
[40] H. S. Matthews,et al. Food-miles and the relative climate impacts of food choices in the United States. , 2008, Environmental science & technology.
[41] M. M. Arafat,et al. Synthesis of SnO2 Nanoparticles via Hydrothermal Method and Their Gas Sensing Applications for Ethylene Detection , 2019, Materials Today: Proceedings.
[42] M. Saltveit. Internal carbon dioxide and ethylene levels in ripening tomato fruit attached to or detached from the plant , 1993 .
[43] M. Génard,et al. Tomato quality as influenced by preharvest factors , 2018 .
[44] Ian M. White,et al. Refractometric sensors based on microsphere resonators , 2005 .
[45] D. Barrett,et al. Changes in pH, acids, sugars and other quality parameters during extended vine holding of ripe processing tomatoes. , 2011, Journal of the science of food and agriculture.
[46] T. Swager,et al. Selective detection of ethylene gas using carbon nanotube-based devices: utility in determination of fruit ripeness. , 2012, Angewandte Chemie.
[47] L. Kassa-Baghdouche. High-sensitivity spectroscopic gas sensor using optimized H1 photonic crystal microcavities , 2020 .
[48] V. Sauer,et al. Improving mechanical sensor performance through larger damping , 2017, Science.
[49] A. Mizrach. Ultrasonic technology for quality evaluation of fresh fruit and vegetables in pre- and postharvest processes , 2008 .
[50] E. J. N. Marques,et al. Performance of new low-cost handheld NIR spectrometers for nondestructive analysis of umbu (Spondias tuberosa Arruda) quality. , 2020, Food chemistry.
[51] J. A. Fernández Pierna,et al. Non-destructive measurement of vitamin C, total polyphenol and sugar content in apples using near-infrared spectroscopy. , 2013, Journal of the science of food and agriculture.
[52] Mixed metal oxide films as pH sensing materials , 2008 .
[53] Noha Morsy,et al. Robust linear and non-linear models of NIR spectroscopy for detection and quantification of adulterants in fresh and frozen-thawed minced beef. , 2013, Meat science.
[54] Salvatore Iannotta,et al. Simultaneous detection of ammonia, methane and ethylene at 1.63 μm with diode laser photoacoustic spectroscopy , 2006 .
[55] Yiheng Qin,et al. Microfabricated electrochemical pH and free chlorine sensors for water quality monitoring: recent advances and research challenges , 2015 .
[56] J. Homola,et al. Surface plasmon resonance (SPR) sensors: approaching their limits? , 2009, Optics express.
[57] O. Korostynska,et al. Drop-Coated Polyaniline Composite Conductimetric pH Sensors , 2007, 2007 30th International Spring Seminar on Electronics Technology (ISSE).
[58] Walter Lang,et al. Application of a miniaturised packed gas chromatography column and a SnO2 gas detector for analysis of low molecular weight hydrocarbons with focus on ethylene detection , 2013 .
[59] Yong Zhao,et al. High sensitivity internal refractive index sensor based on a photonic crystal fiber long period grating , 2017 .
[60] Jens Lienig,et al. Review on Hydrogel-based pH Sensors and Microsensors , 2008, Sensors.
[61] Katarina N. Cvejin,et al. The Effect of Sheet Resistivity and Storage Conditions on Sensitivity of RuO2 Based pH Sensors , 2014 .
[62] Adel A. Kader,et al. Quality Parameters of Fresh-cut Fruit and Vegetable Products , 2002 .
[63] M. Rodrigo,et al. Ripening and Senescence , 2019, Postharvest Physiology and Biochemistry of Fruits and Vegetables.
[64] M. Sthel,et al. CO2 laser photoacoustic detection of ethylene emitted by diesel engines used in urban public transports , 2010 .
[65] Jun Wang,et al. Development of multi-cultivar models for predicting the soluble solid content and firmness of European pear (Pyrus communis L.) using portable vis–NIR spectroscopy , 2017 .
[66] Rainer Künnemeyer,et al. Internal Quality Assessment of Mandarin Fruit by vis/NIR Spectroscopy , 2003 .
[67] Daniel Cozzolino,et al. Recent Trends on the Use of Infrared Spectroscopy to Trace and Authenticate Natural and Agricultural Food Products , 2012 .
[68] Frank K. Tittel,et al. Performance evaluation of a near infrared QEPAS based ethylene sensor , 2009 .
[69] W. Yunus,et al. Refractive index of solutions at high concentrations. , 1988, Applied optics.
[70] O. Korostynska,et al. Conductimetric pH sensor based on novel conducting polymer composite thick films , 2008, 2008 31st International Spring Seminar on Electronics Technology.
[71] C. Pasquini. Near Infrared Spectroscopy: fundamentals, practical aspects and analytical applications , 2003 .
[72] D. Barrett. Maximizing the Nutritional Value of Fruits and Vegetables , 2007 .
[73] R. Mukhiya,et al. Hydrogen ion sensing characteristics of Na3BiO4–Bi2O3 mixed oxide nanostructures based EGFET pH sensor , 2020 .
[74] W. Araújo,et al. Modifications in Organic Acid Profiles During Fruit Development and Ripening: Correlation or Causation? , 2018, Front. Plant Sci..
[75] Mercedes Crego-Calama,et al. Electrochemical sensing of ethylene employing a thin ionic-liquid layer. , 2011, Analytical chemistry.
[76] Y. Yamaki. Organic acids in the juice of citrus fruits , 1989 .
[77] D. Wishart,et al. Nano-Optomechanical Systems for Gas Chromatography. , 2016, Nano letters.
[78] Anja Boisen,et al. Design & fabrication of cantilever array biosensors , 2009 .
[79] Analysis of Ethylene Concentration in the Mexico City Atmosphere by Photoacoustic Spectroscopy , 2002 .
[80] A. Kramer. Effect of Storage on Nutritive Value of Food , 1977, Handbook of Nutritive Value of Processed Food.
[81] K. Varahramyan,et al. SnO 2 nanoparticle-based passive capacitive sensor for ethylene detection , 2012 .
[82] Min Huang,et al. Measurement of soluble solids contents and pH in orange juice using chemometrics and vis-NIRS. , 2006, Journal of agricultural and food chemistry.
[83] Christian J. Doonan,et al. Application of metal and metal oxide nanoparticles@MOFs , 2016 .
[84] B. P. Klein,et al. β-Carotene and ascorbic acid retention in fresh and processed vegetables , 1999 .
[85] Wenqian Huang,et al. Nondestructive evaluation of soluble solid content in strawberry by near infrared spectroscopy , 2013, Other Conferences.
[86] Serge Kokot,et al. Evaluation of chemical components and properties of the jujube fruit using near infrared spectroscopy and chemometrics. , 2016, Spectrochimica acta. Part A, Molecular and biomolecular spectroscopy.
[87] Min Jiang,et al. A Low Cost Compact Measurement System Constructed Using a Smart Electrochemical Sensor for the Real-Time Discrimination of Fruit Ripening , 2016, Sensors.
[88] J. Shenk,et al. Application of NIR Spectroscopy to Agricultural Products , 1992 .
[89] Sun Xudong,et al. Nondestructive assessment of quality of Nanfeng mandarin fruit by a portable near infrared spectroscopy , 2009 .
[90] N. Bârsan,et al. Acetylene- and Ethylene-Sensing Mechanism for LaFeO3-Based Gas Sensors: Operando Insights , 2020 .