0000000000280408

AUTHOR

Vicente Parra

showing 4 related works from this author

Molecular semiconductor-doped insulator (MSDI) heterojunctions: Oligothiophene/bisphtalocyanine (LuPc2) and perylene/bisphthalocyanine as new structu…

2010

Abstract The combination of a sexithiophene and a perylene diimide derivatives, as p-type and n-type materials, respectively, used as sub-layers, to an intrinsic semiconductor, namely the lutetium bisphthalocyanine, allows to obtain a new transducer for gas sensing. These transducers were called molecular semiconductor-doped insulator (MSDI) heterojunctions, were recently designed and reported, but with only phthalocyanines as active materials. p-Type material leads to MSDIs that exhibit a positive response to ozone and a negative response to ammonia, whereas MSDIs prepared from n-type material exhibit a positive response to ammonia and negative response to ozone. The remarkable point is th…

Materials scienceIntrinsic semiconductorbusiness.industryDopingMetals and Alloyschemistry.chemical_elementHeterojunctionInsulator (electricity)Condensed Matter PhysicsLutetiumSurfaces Coatings and FilmsElectronic Optical and Magnetic Materialschemistry.chemical_compoundTransducerchemistryDiimideMaterials ChemistryOptoelectronicsElectrical and Electronic EngineeringbusinessInstrumentationPeryleneSensors and Actuators B: Chemical
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Electrical transduction in phthalocyanine-based gas sensors: from classical chemiresistors to new functional structures

2009

Phthalocyanines are organic-based materials which have attracted a lot of research in recent times. In the field of sensors, they present interesting and valuable potentialities as sensing elements for real gas sensor applications. In the present article, and taking some of our experiments as representative examples, we review the different ways of transduction applied to such applications. Some of the new tendencies and transducers for gas sensing based on phthalocyanine derivatives are also reported. Among them, electrical transduction (resistors, field-effect transistors, diodes, etc.) has been, historically, the most commonly exploited way for the detection and/or quantification of gas…

Real gasbusiness.industryChemistryTransistorNanotechnologyGeneral Chemistrylaw.inventionPhthalocyanine derivativeschemistry.chemical_compoundTransducerlawMolecular semiconductorPhthalocyanineOptoelectronicsResistorbusinessMolecular materialsJournal of Porphyrins and Phthalocyanines
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A Novel Gas Sensor Transducer Based on Phthalocyanine Heterojunction Devices

2007

Abstract: Experimental data concerning the changes in the current-voltage (I-V) perfor-mances of a molecular material-based heterojunction consisting of hexadecafluorinated nickel phthalocyanine (Ni(F 16 Pc)) and nickel phthalocyanine (NiPc), (Au|Ni(F 16 Pc)|NiPc|Al) are introduced as an unprecedented principle of transduction for gas sensing performances. The respective n - and p -type doped-insulator behaviors of the respective materials are supported, owing to the observed changes in surface potential (using the Kelvin probe method) after submission to electron donor (ammonia) and electron acceptor gases (ozone). On the other hand, the bilayer device exhibits strong variations in the bui…

NanotechnologyElectron donorlcsh:Chemical technologyBiochemistryFull Research PaperAnalytical Chemistrygas sensorchemistry.chemical_compoundlcsh:TP1-1185Electrical and Electronic Engineeringorganic heterojunctionmolecular materialsInstrumentationmolecular materials; phthalocyanine; organic heterojunction; gas sensor; transduction.chemistry.chemical_classificationKelvin probe force microscopeResistive touchscreenbusiness.industryBilayerDopingHeterojunctionElectron acceptortransductionAtomic and Molecular Physics and OpticsphthalocyaninechemistryPhthalocyanineOptoelectronicstransduction.businessSensors (Basel, Switzerland)
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Molecular semiconductor-doped insulator (MSDI) heterojunctions: an alternative transducer for gas chemosensing

2009

New organic devices including a heterojunction between a semiconducting molecular material (MS)--lutetium bisphthalocyanine (LuPc2)--and a doped insulator (DI)--copper phthalocyanine (Cu(F(n)Pc), where n = 0, 8, 16)--are designed and studied as transducers for redox-active species sensing.

Materials scienceDopingAnalytical chemistrychemistry.chemical_elementHeterojunctionInsulator (genetics)BiochemistryCopperLutetiumAnalytical Chemistrychemistry.chemical_compoundTransducerchemistryMolecular semiconductorElectrochemistryPhthalocyanineEnvironmental ChemistrySpectroscopyThe Analyst
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