{"id":8,"date":"2026-09-15T12:28:22","date_gmt":"2026-09-15T10:28:22","guid":{"rendered":"https:\/\/wp.icmm.csic.es\/emmh\/?page_id=8"},"modified":"2026-09-16T11:04:58","modified_gmt":"2026-09-16T09:04:58","slug":"research-lines","status":"publish","type":"page","link":"https:\/\/wp.icmm.csic.es\/emmh\/research-lines\/","title":{"rendered":"Research Lines"},"content":{"rendered":"<div class=\"projects\">\n<h2>Graphene and graphene oxide based materials for optoelectronics<\/h2>\n<h2>Organic-inorganic materials for optoelectronics<\/h2>\n<h2>Transparent films with electronic functionalities<\/h2>\n<h2>Design, growth and characterisation of perovskite heterostructures<\/h2>\n<h2>Oxides: bulk, thin films and nanoparticles<\/h2>\n<h2>Magnetic nanostructured materials with tunable properties<\/h2>\n<hr \/>\n<p>&nbsp;<\/p>\n<h2>Graphene and graphene oxide based materials for optoelectronics<\/h2>\n<h1>\u00a0General objectives<\/h1>\n<p>Design and fabrication of hybrid materials with optimal symbiosis of organic semiconductors, inorganic nanoparticles and graphene properties.<\/p>\n<p>Search of new or improved features of the resulting nanostructured hybrid films,<\/p>\n<p>Applications: transparent electrodes and nanostructured active layers in photovoltaic cells, electroluminescent devices, field effect transistors and sensors.<\/p>\n<h1>Approach<\/h1>\n<p>Materials design and fabrication + Fundamental study of materials +\u00a0\u00a0Device fabrication +\u00a0\u00a0Technology development<\/p>\n<div><strong>Basic studies<\/strong><\/div>\n<p>Resonant Raman processes in graphene oxide<\/p>\n<p>Chemical and thermal reduction mechanisms in few layer thin films and bulk graphene oxides.<\/p>\n<p>Stacking of graphene oxide few-layer films and defects produced by thermal and chemcial rediction mechanisms<\/p>\n<p><strong>Transparent electrodes: \u00a0<\/strong>Cheap, green, scalable to large areas, Indium free, on any substrate, in particular\u00a0 flexible \u00a0\u21d2\u00a0 Graphene oxide (GO)<\/p>\n<p>Optimization of chemically derived few-layer graphene films for transparent electrodes with doping control<\/p>\n<p>Hybrid graphene based materials: chemically derived graphene thin films or CVD graphene with metallic, semiconductor or oxide nanoparticles.<\/p>\n<p><strong>Graphene patterning and nanostructuring &#8211; graphene quantum dots\u00a0<\/strong><\/p>\n<p>Large scale patterning of GO and G films for integration in devices,\u00a0\u00a0Nano-Graphene-GQDs<\/p>\n<p>Development and optimization of a novel mask-free cost-effective technique for micro\/nano-patterning based on electrical micro\/nano-discharges compatible with large area manufacturing.<\/p>\n<p><strong>CVD graphene and nanographene<\/strong>\u00a0on \u00a0different metal thin films.<\/p>\n<p>Building a home made set-up: \u00a0CVD + sputtering technique<\/p>\n<p>&nbsp;<\/p>\n<h1>Related Projects:<\/h1>\n<p>&nbsp;<\/p>\n<p><span lang=\"ES-TRAD\">\u201cMATERIALES HIBRIDOS BASADOS EN GRAFENO PARA APLICACIONES EN ENERGIA Y DETECCION OPTICA\u201d. Enero 2016- diciembre 2018, \u00a0<strong>MAT2015-65356-C3-1.<\/strong><\/span><\/p>\n<p>\u201c<strong>PHAMA 2.0,\u00a0<\/strong><span lang=\"ES-TRAD\">Materiales h\u00edbridos avanzados para aplicaciones fot\u00f3nicas<\/span>\u201d Programa de I + D entre grupos de investigaci\u00f3n de la Comunidad de Madrid. Proyecto concedido. 2015-2018.<\/p>\n<p>\u201cMateriales h\u00edbridos basados en grafeno para aplicaciones optoelectr\u00f3nicas: optimizaci\u00f3n de sus propiedades y procesado de dispositivos de bajo coste\u201d ICMM.\u00a0<strong>MAT2012- 37276-C03-01<\/strong><\/p>\n<p>\u201cSistemas de almacenamiento de energ\u00eda con grafeno para veh\u00edculos el\u00e9ctricos\u201d\u00a0<strong>Proyecto Repsol-INSPIRE<\/strong>. UPM-CSIC. Abril 2013 \u2013 diciembre 2015<\/p>\n<p><strong>Graphene Flagship<\/strong>, Octoubre 2013. Workpackage Materials<\/p>\n<h1>\u00a0Publications:<\/h1>\n<div class=\"gallery clearfix\">\n<ul>\n<li>Graphene &#8211; ultrasmall silver nanoparticle interactions and their effect on electronic transport and Raman enhancement\u00a0&#8211;\u00a0<em>F. Jimenez-Villacorta, E. Climent-Pascual, R. Ramirez-Jimenez, J. Sanchez-Marcos, C. Prieto, A. de Andres,<\/em>\u00a0Carbon\u00a0<b>101<\/b>, 305 (2016).<\/li>\n<li>Elastic constants of graphene oxide few-layer films: correlations with interlayer stacking and bonding\u00a0&#8211;\u00a0<em>RJJ. Rioboo, E. Climent-Pascual, X. Diez-Betriu, F. Jimenez-Villacorta, C. Prieto, A. de Andres,<\/em>\u00a0J Mater Chem C\u00a0<b>3<\/b>, 4868 (2015).<\/li>\n<li>Large area graphene and graphene oxide patterning and nanographene fabrication by one-step lithography\u00a0&#8211;\u00a0<em>E. Climent-Pascual, M. Garcia-Velez, AL. Alvarez, C. Coya, C. Munuera, X. Diez-Betriu, M. Garcia-Hernandez, A. de Andres,<\/em>\u00a0Carbon\u00a0<b>90<\/b>, 110 (2015).<\/li>\n<li>Lactate biosensor based on a bionanocomposite composed of titanium oxide nanoparticles, photocatalytically reduced graphene, and lactate oxidase\u00a0&#8211;\u00a0<em>E. Casero, C. Alonso, MD. Petit-Dominguez, L. Vazquez, AM. Parra-Alfambra, P. Merino, S. Alvarez-Garcia, A. de Andres, E. Suarez, F. Pariente, E. Lorenzo,<\/em>\u00a0Microchim Acta\u00a0<b>181<\/b>, 79 (2014).<\/li>\n<li>Breakdown into nanoscale of graphene oxide: Confined hot spot atomic reduction and fragmentation\u00a0&#8211;\u00a0<em>G. Goncalves, M. Vila, I. Bdikin, A. de Andres, N. Emami, RAS. Ferreira, LD. Carlos, J. Gracio, PAAP Marques,<\/em>\u00a0Scientific Reports\u00a0<b>4<\/b>, 6735 (2014).<\/li>\n<li>Graphene-oxide stacking and defects in few-layer films: Impact of thermal and chemical reduction\u00a0&#8211;\u00a0<em>X. Diez-Betriu, FJ. Mompeam, C. Munuera, J. Rubio-Zuazo, R. Menendez, GR. Castro, A. de Andres,<\/em>\u00a0Carbon\u00a0<b>80<\/b>, 40 (2014).<\/li>\n<li>Raman spectroscopy for the study of reduction mechanisms and optimization of conductivity in graphene oxide thin films\u00a0&#8211;\u00a0<em>X. Diez-Betriu, S. Alvarez-Garcia, C. Botas, P. Alvarez, J. Sanchez-Marcos, C. Prieto, R. Menendez, A. de Andres,<\/em>\u00a0J Mater Chem C\u00a0<b>1<\/b>, 6905 (2013).<\/li>\n<li>Comparative Response of Biosensing Platforms Based on Synthesized Graphene Oxide and Electrochemically Reduced Graphene\u00a0&#8211;\u00a0<em>E. Casero, C. Alonso, L. Vazquez, MD. Petit-Dominguez, AM. Parra-Alfambra, M. de la Fuente, P. Merino, S. Alvarez-Garcia, A. de Andres, F. Pariente, E. Lorenzo,<\/em>\u00a0Electroanal\u00a0<b>25<\/b>, 154 (2013).<\/li>\n<li>Carbon nanotubes-mesoporous silica composites as controllable biomaterials\u00a0&#8211;\u00a0<em>M. Vila, JL. Hueso, M. Manzano, I. Izquierdo-Barba, A. de Andres, J. Sanchez-Marcos, C. Prieto, M. Vallet-Regi,<\/em>\u00a0J Mater Chem\u00a0<b>19<\/b>, 7745 (2009).<\/li>\n<\/ul>\n<\/div>\n<hr \/>\n<p><a class=\"anchor\" name=\"22\"><\/a><\/p>\n<h2>Organic-inorganic materials for optoelectronics<\/h2>\n<p>Study, design and growth of hybrid devices based in inorganic and organic heterostructures for organic electronics applications as transistors and diodes<\/p>\n<p>Rare earth based organic and inorganic materials for applications in lighting and optical thermometry and as phosphors.<\/p>\n<p>Rare earth doped nanoparticles<\/p>\n<p>Metal organic frameworks with rare earths (MOF-Re)<\/p>\n<h1>Related Projects:<\/h1>\n<p>\u201cMateriales h\u00edbridos avanzados para aplicaciones fot\u00f3nicas\u201d Programa de I + D entre grupos de investigaci\u00f3n de la Comunidad de Madrid.\u00a0<strong>S2009\/MAT-1756<\/strong>.<\/p>\n<h1>Some publications:<\/h1>\n<div class=\"gallery clearfix\">\n<ul>\n<li>Highly luminescent pure-red-emitting fluorinated beta-diketonate europium(III) complex for full solution-processed OLEDs\u00a0&#8211;\u00a0<em>JP. Martins, P. Martin-Ramos, C. Coya, MR. Silva, MES. Eusebio, A. de Andres, AL. Alvarez, J. Martin-Gil,<\/em>\u00a0J Lumin\u00a0<b>159<\/b>, 17 (2015).<\/li>\n<li>Structural and Photoluminescence Study of Eu3+\/TiO2 Xerogels as a Function of the Temperature Using Optical Techniques\u00a0&#8211;\u00a0<em>M. Borlaf, MT. Colomer, R. Moreno, A. de Andres,<\/em>\u00a0J Am Ceram Soc\u00a0<b>98<\/b>, 338 (2015).<\/li>\n<li>Multimetal rare earth MOFs for lighting and thermometry: tailoring color and optimal temperature range through enhanced disulfobenzoic triplet phospho\u00a0&#8211;\u00a0<em>RF. D&#8217;Vries, S. Alvarez-Garcia, N. Snejko, LE. Bausa, E. Gutierrez-Puebla, A. de Andres, MA. Monge,<\/em>\u00a0J Mater Chem C\u00a0<b>1<\/b>, 6316 (2013).<\/li>\n<li>Star-shaped hexaaryltriindoles small molecules: Tuning molecular properties towards solution processed organic light emitting devices\u00a0&#8211;\u00a0<em>C. Coya, C. Ruiz, AL. Alvarez, S. Alvarez-Garcia, EM. Garcia-Frutos, B. Gomez-Lor, A. de Andres,<\/em>\u00a0Org Electron\u00a0<b>13<\/b>, 2138 (2012).<\/li>\n<li>Stable organic radical stacked by in situ coordination to rare earth cations in MOF materials\u00a0&#8211;\u00a0<em>F. Gandara, N. Snejko, A. de Andres, JR. Fernandez, JC. Gomez-Sal, E. Gutierrez-Puebla, A. Monge,<\/em>\u00a0Rsc Advances\u00a0<b>2<\/b>, 949 (2012).<\/li>\n<li>Optical properties of nanometric TiO2 clusters deposited on thin films by high pressure sputtering\u00a0&#8211;\u00a0<em>R. Martinez-Morillas, J. Sanchez-Marcos, A. de Andres, C. Prieto,<\/em>\u00a0Surf Coat Tech\u00a0<b>204<\/b>, 1893 (2010).<\/li>\n<li>Crystal structure and charge-transport properties of N-trimethyltriindole: Novel p-type organic semiconductor single crystals\u00a0&#8211;\u00a0<em>EM. Garcia-Frutos, E. Gutierrez-Puebla, MA. Monge, R. Ramirez, P. de Andres, A. de Andres, R. Ramirez, B. Gomez-Lor,<\/em>\u00a0Org Electron\u00a0<b>10<\/b>, 643 (2009).<\/li>\n<li>A rare-earth MOF series: Fascinating structure, efficient light emitters, and promising catalysts\u00a0&#8211;\u00a0<em>F. Gandara, A. de Andres, B. Gomez-Lor, E. Gutierrez-Puebla, M. Iglesias, MA. Monge, DM. Proserpio, N. Snejko,<\/em>\u00a0Cryst Growth Des\u00a0<b>8<\/b>, 378 (2008).<\/li>\n<li>Self-sterilized EVOH-TiO2 nanocomposites: Interface effects on biocidal properties\u00a0&#8211;\u00a0<em>ML. Cerrada, C. Serrano, M. Sanchez-Chaves, M. Fernandez-Garcia, F. Fernandez-Martin, A. de Andres, RJJ. Rioboo, A. Kubacka, M. Ferrer, M. Fernandez-Garcia,<\/em>\u00a0Adv Funct Mater\u00a0<b>18<\/b>, 1949 (2008).<\/li>\n<\/ul>\n<\/div>\n<hr \/>\n<p><a class=\"anchor\" name=\"21\"><\/a><\/p>\n<h2>Transparent films with electronic functionalities<\/h2>\n<p>Design, growth and optimization of new transparent oxide and nitride based thin films and multilayers with tuned electronic and piezoelectric properties.<\/p>\n<div class=\"gallery clearfix\">\n<ul>\n<li>Indium-tin oxide thin films deposited at room temperature on glass and PET substrates: Optical and electrical properties variation with the H-2-Ar spu\u00a0&#8211;\u00a0<em>L. Alvarez-Fraga, F. Jimenez-Villacorta, J. Sanchez-Marcos, A. de Andres, C. Prieto,<\/em>\u00a0Appl Surf Sci\u00a0<b>344<\/b>, 217 (2015).<\/li>\n<li>Huge Photoresistance in Transparent and Conductive Indium Titanium Oxide Films Prepared by Electron Beam-Physical Vapor Deposition\u00a0&#8211;\u00a0<em>Rocio Martinez-Morillas, Rafael Ramirez, Jorge Sanchez-Marcos, Emiliano Fonda, Alicia de Andres, Carlos Prieto,<\/em>\u00a0Acs Appl. Mater. Interfaces\u00a0<b>6<\/b>, 1781 (2014).<\/li>\n<li>Amorphous-nanocrystalline Al doped ZnO transparent conducting thin films\u00a0&#8211;\u00a0<em>X. Diez-Betriu, R. Jimenez-Rioboo, J. Sanchez-Marcos, E. Cespedes, A. Espinosa, A. de Andres,<\/em>\u00a0J Alloy Compd\u00a0<b>536<\/b>, S445 (2012).<\/li>\n<li>Optical properties of nanometric TiO2 clusters deposited on thin films by high pressure sputtering\u00a0&#8211;\u00a0<em>R. Martinez-Morillas, J. Sanchez-Marcos, A. de Andres, C. Prieto,<\/em>\u00a0Surf Coat Tech\u00a0<b>204<\/b>, 1893 (2010).<\/li>\n<li>Optical and transport properties of Ti-doped In2O3 thin films prepared by electron beam physical vapour deposition\u00a0&#8211;\u00a0<em>J. Sanchez-Marcos, I. M. Ochando, R. Escobar Galindo, R. Martinez-Morillas, C. Prieto,<\/em>\u00a0Phys Status Solidi A\u00a0<b>207<\/b>, 1549 (2010).<\/li>\n<\/ul>\n<\/div>\n<hr \/>\n<p><a class=\"anchor\" name=\"19\"><\/a><\/p>\n<h2>Design, growth and characterisation of perovskite heterostructures<\/h2>\n<p>as macroscopic objects but also with particular focus on the study of interfaces (Oxidetronics). Optimizing the mechanisms involved in the control of: 1.-Magnetoresitsance\/electroresitance from strain fields in piezo\/manganite heterosetructures i. e. manipulation of the magnetic and electronic states of the ferromagnetic (manganite)layers byactuation upon the piezoelectric layer; 2.-Magnetoresistance in manganite cuprate heterostructures,determining the relative importance of the mechanism involved ( proximity effects, quasiparticles diffusion, stray fields and electronic reconstruction at the interfaces). 3. The electronic structure at the interface between complex oxides as a new route to doping alternative to the conventional chemical element substitution. This scenario includes the electrostatic doping due to electric field induced depletion and accumulation layers, bandbending at pn junctions or Schottky contacts as well as charge tranfer porcoesses stemming from valence or polarity mismatch.<\/p>\n<div class=\"gallery clearfix\"><\/div>\n<hr \/>\n<p><a class=\"anchor\" name=\"18\"><\/a><\/p>\n<h2>Oxides: bulk, thin films and nanoparticles<\/h2>\n<p>Preparation and study of oxides with interesting magnetic, optical and electronic properties and their correaltion to the structure and the nanosize. 1) structure-properties correlation: the structural repercussion of a high covalency of themetal-oxygen bond; effect of the charge disproportionation; 2) study of the metal-insulator transitions in oxides with strong electronic correlation; 3) comprehension of the magnetic coupling mechanisms and transport in magnetoresistive materials; 5) study of the ordered magnetic structures and charge ordering phenomena in mixed-valence systems; 6) Understanding multiferroism: unveiling the mechanisms of magnetic-electric coupling.<\/p>\n<div class=\"gallery clearfix\">\n<ul>\n<li>Structural behavior of Co\/Cu multilayers studied by X-ray absorption spectroscopy\u00a0&#8211;\u00a0<em>C. Prieto, R. Castaner, JL. Martinez, A. deAndres, J. Trigo, JM. Sanz,<\/em>\u00a0J Magn Magn Mater\u00a0<b>161<\/b>, 31 (1996).<\/li>\n<\/ul>\n<\/div>\n<hr \/>\n<p><a class=\"anchor\" name=\"20\"><\/a><\/p>\n<h2>Magnetic nanostructured materials with tunable properties<\/h2>\n<p>Preparation of thin films formed by nanometric structures presenting ferromagnetism at room temperature by overcoming the superparamagnetic limit. The nanometric size of the ferromagnetic clusters allows, for instance, the extreme packing needed in high density recording materials or tunneling magnetoresistance needed for spintronic devices.<\/p>\n<div class=\"gallery clearfix\">\n<ul>\n<li>Exchange bias and magnetic behaviour of iron nanoclusters prepared by the gas aggregation technique\u00a0&#8211;\u00a0<em>J. Sanchez-Marcos, MA. Laguna-Marco, R. Martinez-Morillas, F. Jimenez-Villacorta, E. Cespedes, N. Menendez, C. Prieto,<\/em>\u00a0J Alloy Compd\u00a0<b>536<\/b>, S265 (2012).<\/li>\n<li>On the Origin of the Magnetism of Mn-Zn-O Systems: Structural, Electronic, and Magnetic Study of Exotic MnO2-delta\/ZnO Thin Films\u00a0&#8211;\u00a0<em>E. Cespedes, MA. Laguna-Marco, F. Jimenez-Villacorta, J. Chaboy, R. Boada, C. Guglieri, A. de Andres, C. Prieto,<\/em>\u00a0J Phys Chem C\u00a0<b>115<\/b>, 24092 (2011).<\/li>\n<li>Gold embedding influence on the magnetic behaviour of iron in Fe\/Si3N4 multilayers prepared by sputtering\u00a0&#8211;\u00a0<em>J. Sanchez-Marcos, F. Jimenez-Villacorta, E. Cespedes, A. Munoz-Martin, C. Prieto,<\/em>\u00a0Mater Lett\u00a0<b>65<\/b>, 13 (2011).<\/li>\n<li>Decoupling mechanisms and magnetic stability of nanostructured iron chains prepared by sputtering\u00a0&#8211;\u00a0<em>F. Jimenez-Villacorta, E. Cespedes, C. Ocal, C. Prieto,<\/em>\u00a0Appl Phys Lett\u00a0<b>98<\/b>, 102513 (2011).<\/li>\n<li>X-ray magnetic circular dichroism study of the blocking process in nanostructured iron-iron oxide core-shell systems\u00a0&#8211;\u00a0<em>F. Jimenez-Villacorta, C. Prieto, Y. Huttel, ND. Telling, G. van der Laan,<\/em>\u00a0Phys Rev B\u00a0<b>84<\/b>, 172404 (2011).<\/li>\n<li>Exchange bias in iron oxide nanoclusters\u00a0&#8211;\u00a0<em>J. Sanchez-Marcos, MA. Laguna-Marco, R. Martinez-Morillas, E. Cespedes, F. Jimenez-Villacorta, N. Menendez, C. Prieto,<\/em>\u00a0J Phys: Condens Matter\u00a0<b>23<\/b>, 476003 (2011).<\/li>\n<li>Study of nanoconductive and magnetic properties of nanostructured iron films prepared by sputtering at very low temperatures\u00a0&#8211;\u00a0<em>F. Jimenez-Villacorta, C. Munuera, C. Ocal, C. Prieto,<\/em>\u00a0J Nanopart Res\u00a0<b>12<\/b>, 1117 (2010).<\/li>\n<li>Effects of interparticle interactions in magnetic Fe\/Si3N4 granular systems\u00a0&#8211;\u00a0<em>F. Jimenez-Villacorta, J. Sanchez-Marcos, E. Cespedes, M. Garcia-Hernandez, C. Prieto,<\/em>\u00a0Phys Rev B\u00a0<b>82<\/b>, 134413 (2010).<\/li>\n<li>Ferromagnetism in SnO2-based multilayers: Clustering of defects induced by doping\u00a0&#8211;\u00a0<em>A. Espinosa, M. Garcia-Hernandez, N. Menendez, C. Prieto, A. de Andres,<\/em>\u00a0Phys Rev B\u00a0<b>81<\/b>, 064419 (2010).<\/li>\n<li>Magnetic properties and interaction mechanisms of iron-based core-shell structures prepared by sputtering at low substrate temperatures\u00a0&#8211;\u00a0<em>F. Jimenez-Villacorta, C. Prieto,<\/em>\u00a0J Phys: Condens Matter\u00a0<b>20<\/b>, 085216 (2008).<\/li>\n<li>X-ray absorption and magnetic circular dichroism characterization of a novel ferromagnetic MnNx phase in Mn\/Si3N4 multilayers\u00a0&#8211;\u00a0<em>E. Cespedes, Y. Huttel, L. Martinez, A. de Andres, J. Chaboy, M. Vila, ND. Telling, G. van der Laan, C. Prieto,<\/em>\u00a0Appl Phys Lett\u00a0<b>93<\/b>, 252506 (2008).<\/li>\n<\/ul>\n<\/div>\n<\/div>\n","protected":false},"excerpt":{"rendered":"<p>Graphene and graphene oxide based materials for optoelectronics Organic-inorganic materials for optoelectronics Transparent films with electronic functionalities Design, growth and characterisation of perovskite heterostructures Oxides: bulk, thin films and nanoparticles Magnetic nanostructured materials with tunable properties &nbsp; Graphene and graphene oxide based materials for optoelectronics \u00a0General objectives Design and fabrication of hybrid materials with optimal [&hellip;]<\/p>\n","protected":false},"author":1,"featured_media":0,"parent":0,"menu_order":0,"comment_status":"closed","ping_status":"closed","template":"","meta":{"footnotes":""},"class_list":["post-8","page","type-page","status-publish","hentry","post-preview"],"_links":{"self":[{"href":"https:\/\/wp.icmm.csic.es\/emmh\/wp-json\/wp\/v2\/pages\/8","targetHints":{"allow":["GET"]}}],"collection":[{"href":"https:\/\/wp.icmm.csic.es\/emmh\/wp-json\/wp\/v2\/pages"}],"about":[{"href":"https:\/\/wp.icmm.csic.es\/emmh\/wp-json\/wp\/v2\/types\/page"}],"author":[{"embeddable":true,"href":"https:\/\/wp.icmm.csic.es\/emmh\/wp-json\/wp\/v2\/users\/1"}],"replies":[{"embeddable":true,"href":"https:\/\/wp.icmm.csic.es\/emmh\/wp-json\/wp\/v2\/comments?post=8"}],"version-history":[{"count":7,"href":"https:\/\/wp.icmm.csic.es\/emmh\/wp-json\/wp\/v2\/pages\/8\/revisions"}],"predecessor-version":[{"id":150,"href":"https:\/\/wp.icmm.csic.es\/emmh\/wp-json\/wp\/v2\/pages\/8\/revisions\/150"}],"wp:attachment":[{"href":"https:\/\/wp.icmm.csic.es\/emmh\/wp-json\/wp\/v2\/media?parent=8"}],"curies":[{"name":"wp","href":"https:\/\/api.w.org\/{rel}","templated":true}]}}