{"id":965,"date":"2026-04-02T09:14:02","date_gmt":"2026-04-02T09:14:02","guid":{"rendered":"https:\/\/mateuszadam.com\/?page_id=965"},"modified":"2026-07-26T18:45:27","modified_gmt":"2026-07-26T18:45:27","slug":"konferencje","status":"publish","type":"page","link":"https:\/\/mateuszadam.com\/index.php\/konferencje\/","title":{"rendered":"Konferencje"},"content":{"rendered":"<div data-colibri-id=\"965-c1\" class=\"style-547 style-local-965-c1 position-relative\">\n  <!---->\n  <div data-colibri-component=\"section\" data-colibri-id=\"965-c2\" id=\"custom\" class=\"h-section h-section-global-spacing d-flex align-items-lg-center align-items-md-center align-items-center style-548 style-local-965-c2 position-relative\">\n    <!---->\n    <!---->\n    <div class=\"h-section-grid-container h-section-boxed-container\">\n      <!---->\n      <div data-colibri-id=\"965-c3\" class=\"h-row-container gutters-row-lg-2 gutters-row-md-2 gutters-row-0 gutters-row-v-lg-2 gutters-row-v-md-2 gutters-row-v-2 style-549 style-local-965-c3 position-relative\">\n        <!---->\n        <div class=\"h-row justify-content-lg-center justify-content-md-center justify-content-center align-items-lg-stretch align-items-md-stretch align-items-stretch gutters-col-lg-2 gutters-col-md-2 gutters-col-0 gutters-col-v-lg-2 gutters-col-v-md-2 gutters-col-v-2\">\n          <!---->\n          <div class=\"h-column h-column-container d-flex h-col-lg-auto h-col-md-auto h-col-auto style-550-outer style-local-965-c4-outer\">\n            <div data-colibri-id=\"965-c4\" class=\"d-flex h-flex-basis h-column__inner h-px-lg-2 h-px-md-2 h-px-2 v-inner-lg-2 v-inner-md-2 v-inner-2 style-550 style-local-965-c4 position-relative\">\n              <!---->\n              <!---->\n              <div class=\"w-100 h-y-container h-column__content h-column__v-align flex-basis-100 align-self-lg-start align-self-md-start align-self-start\">\n                <!---->\n                <div data-colibri-id=\"965-c5\" class=\"h-global-transition-all h-heading style-551 style-local-965-c5 position-relative h-element\">\n                  <!---->\n                  <div class=\"h-heading__outer style-551 style-local-965-c5\">\n                    <!---->\n                    <!---->\n                    <h1 class=\"\">Konferencje<\/h1>\n                  <\/div>\n                <\/div>\n              <\/div>\n            <\/div>\n          <\/div>\n        <\/div>\n      <\/div>\n    <\/div>\n  <\/div>\n  <div data-colibri-component=\"section\" data-colibri-id=\"965-c6\" id=\"custom-2\" class=\"h-section h-section-global-spacing d-flex align-items-lg-center align-items-md-center align-items-center style-552 style-local-965-c6 position-relative\">\n    <!---->\n    <!---->\n    <div class=\"h-section-grid-container h-section-boxed-container\">\n      <!---->\n      <div data-colibri-id=\"965-c7\" class=\"h-row-container gutters-row-lg-2 gutters-row-md-2 gutters-row-0 gutters-row-v-lg-2 gutters-row-v-md-2 gutters-row-v-2 style-555 style-local-965-c7 position-relative\">\n        <!---->\n        <div class=\"h-row justify-content-lg-center justify-content-md-center justify-content-center align-items-lg-stretch align-items-md-stretch align-items-stretch gutters-col-lg-2 gutters-col-md-2 gutters-col-0 gutters-col-v-lg-2 gutters-col-v-md-2 gutters-col-v-2\">\n          <!---->\n          <div class=\"h-column h-column-container d-flex h-col-lg-auto h-col-md-auto h-col-auto style-556-outer style-local-965-c8-outer\">\n            <div data-colibri-id=\"965-c8\" class=\"d-flex h-flex-basis h-column__inner h-px-lg-2 h-px-md-2 h-px-2 v-inner-lg-2 v-inner-md-2 v-inner-2 style-556 style-local-965-c8 position-relative\">\n              <!---->\n              <!---->\n              <div class=\"w-100 h-y-container h-column__content h-column__v-align flex-basis-100 align-self-lg-start align-self-md-start align-self-start\">\n                <!---->\n                <div data-colibri-id=\"965-c9\" class=\"h-text h-text-component style-557 style-local-965-c9 position-relative h-element\">\n                  <!---->\n                  <!---->\n                  <div class=\"\">\n                    <p>1.&nbsp;&nbsp;&nbsp;&nbsp;&nbsp;&nbsp;Baluk, M. A., Gontarek-Castro, E., Nikiforow, K., Kroczewska-Gnatowska, M., Mazierski, P., \u0141uczak, J., &amp; Zaleska-Medynska, A. (2026).&nbsp;<em>Application of MOFs in Heterogeneous Photocatalysis<\/em>&nbsp;[Paper\n                      presented].<\/p>\n                    <p>2.&nbsp;&nbsp;&nbsp;&nbsp;&nbsp;&nbsp;Drze\u017cd\u017con, J., Parcheta-Szwindowska, P., Baluk, M. A., Chernyayeva, O., Liu, Y., &amp; Pinna, N. (2026).&nbsp;<em>Water-Based Polymerization of Methyl Methacrylate on Modified TiO\u2082 Nanotubes<\/em>&nbsp;[Paper\n                      presented].<\/p>\n                    <p>3.&nbsp;&nbsp;&nbsp;&nbsp;&nbsp;&nbsp;Pieczy\u0144ska, A., Mazierski, P., Baluk, M. A., Cavdar, O., Miody\u0144ska-Melzer, M., Bia\u0142k-Bieli\u0144ska, A., Klimczuk, T., Nikiforow, K., Matus, K., &amp; Zaleska-Medynska, A. (2026).&nbsp;<em>Metal-Organic Frameworks (MOFs) for the Removal of Organic Contaminants from Aqueous Systems<\/em>&nbsp;[Paper\n                      presented].<\/p>\n                    <p>4.&nbsp;&nbsp;&nbsp;&nbsp;&nbsp;&nbsp;Baluk, M. A., Miody\u0144ska-Melzer, M., Drze\u017cd\u017con, J., Nikiforow, K., Klimczuk, T., Matus, K., Zappia, S., &amp; Zaleska-Medynska, A. (2026).&nbsp;<em>Novel and rapid synthesis of MIV-based multimetal\u2013organic frameworks for photopolymerization of methyl methacrylate under visible light<\/em>&nbsp;[Poster].<\/p>\n                    <p>5.&nbsp;&nbsp;&nbsp;&nbsp;&nbsp;&nbsp;Baluk, M. A., Pieczy\u0144ska, A., Mazierski, P., Klimczuk, T., &amp; Zaleska-Medynska, A. (2026).&nbsp;<em>Photocatalytic performance of TiO2\/MOF composites for hydrogen photoproduction and pollutant photo-degradation in natural seawater<\/em>&nbsp;[Poster].<\/p>\n                    <p>6.&nbsp;&nbsp;&nbsp;&nbsp;&nbsp;&nbsp;Baluk, M. A., Pieczy\u0144ska, A., Mazierski, P., Klimczuk, T., Nikiforow, K., &amp; Zaleska-Medynska, A. (2026).&nbsp;<em>Photocatalytic performance of TiO2\/MOF composites for hydrogen production and pollutant degradation in natural seawater<\/em>&nbsp;[Poster].<\/p>\n                    <p>7.&nbsp;&nbsp;&nbsp;&nbsp;&nbsp;&nbsp;Baluk, M. A., Mazierski, P., Pieczy\u0144ska, A., \u0141uczak, J., Kroczewska-Gnatowska, M., &amp; Zaleska-Medynska, A. (2026).&nbsp;<em>Szkielety metalo-organiczne do sorpcji i fotokonwersji CO2<\/em>&nbsp;[Poster].<\/p>\n                    <p>8.&nbsp;&nbsp;&nbsp;&nbsp;&nbsp;&nbsp;Czy\u017c\u00f3w, W., Baluk, M. A., Miody\u0144ska-Melzer, M., Mazierski, P., Trumi\u0144ski, I., Kleinschmidt, H., Drze\u017cd\u017con, J., Ha\u0142as, E., Szymankiewicz, M., &amp; Kwiatkowski, H. (2026).&nbsp;<em>Jak odnawialne s\u0105 odnawialne \u017ar\u00f3d\u0142a energii \u2013 analiza LCA oraz CF<\/em>&nbsp;[Poster].<\/p>\n                    <p>9.&nbsp;&nbsp;&nbsp;&nbsp;&nbsp;&nbsp;Kleinschmidt, H., Baluk, M. A., Czy\u017c\u00f3w, W., Mazierski, P., Miody\u0144ska-Melzer, M., Trumi\u0144ski, I., Ha\u0142as, E., Kwiatkowski, H., Szymankiewicz, M., &amp; Drze\u017cd\u017con, J. (2026).&nbsp;<em>\u015awiat\u0142o i ciep\u0142o \u2013 technologia polimer\u00f3w termoelektrycznych w fotowoltaice<\/em>&nbsp;[Poster].<\/p>\n                    <p>10.&nbsp;Pieczy\u0144ska, A., Baluk, M. A., Mazierski, P., Miody\u0144ska-Melzer, M., Cavdar, O., &amp; Zaleska-Medynska, A. (2026).&nbsp;<em>PCN-222 Thin Film on Ceramic Foam for Removal of Disinfection By-products<\/em>&nbsp;[Poster].<\/p>\n                    <p>11.&nbsp;Trumi\u0144ski, I., Drze\u017cd\u017con, J., Baluk, M. A., Czy\u017c\u00f3w, W., Mazierski, P., Miody\u0144ska-Melzer, M., Kleinschmidt, H., Ha\u0142as, E., Kwiatkowski, H., &amp; Szymankiewicz, M. (2026).&nbsp;<em>Analiza mo\u017cliwo\u015bci autonomii energetycznej urz\u0105dze\u0144 elektronicznych w systemach off-grid<\/em>&nbsp;[Poster].<\/p>\n                    <p>12.&nbsp;Baluk, M. A. (2025).&nbsp;<em>Od Zr-onowej cegie\u0142ki do PCN-222, czyli o w\u0142a\u015bciwo\u015bciach porfirynowego szkieletu metalo-organicznego<\/em>&nbsp;[Paper presented].<\/p>\n                    <p>13.&nbsp;Drze\u017cd\u017con, J., Dai, S., Fan, H., Sikorski, A., Baluk, M. A., Datta, J., Ranskiy, A., &amp; Jacewicz, D. (2025).&nbsp;<em>Modification of poly(2-chloro-2-propen-1-ol) with ethylenediamine towards the novel material morphology and CO2 sorption properties<\/em>&nbsp;[Paper\n                      presented].<\/p>\n                    <p>14.&nbsp;Jutrzenka Trzebiatowska, P., Baluk, M. A., Gazda, M., &amp; Zaleska-Medynska, A. (2025).&nbsp;<em>Metal-organic frameworks (MOFs) as catalysts in plastic depolymerization reactions<\/em>&nbsp;[Paper presented].<\/p>\n                    <p>15.&nbsp;Khadem, S. S. M., Kroczewska, M., Baluk, M. A., Mazierski, P., Zaleska-Medynska, A., &amp; \u0141uczak, J. (2025).&nbsp;<em>Post-Synthetic Metalation of Al-PMOF for Enhanced Visible-Light CO\u2082 Photoconversion<\/em>&nbsp;[Paper presented].<\/p>\n                    <p>16.&nbsp;Baluk, M. A., Pieczy\u0144ska, A., Makowski, D., Mazierski, P., Nikiforow, K., Do\u0142\u017conek, J., &amp; Zaleska-Medynska, A. (2025).&nbsp;<em>Applications of NH\u2082-MIL-125-based materials for photocatalysis<\/em>&nbsp;[Poster].<\/p>\n                    <p>17.&nbsp;Baluk, M. A., Pieczy\u0144ska, A., Mazierski, P., Kroczewska-Gnatowska, M., Nikiforow, K., Miko\u0142ajczyk, A., Hoang, K., Tolba, S., Palyta, M., Do\u0142\u017conek, J., Kuila, A., Paz, Y., \u0141uczak, J., &amp; Zaleska-Medynska, A. (2025).&nbsp;<em>Effect of copper modification on PCN-222 properties<\/em>&nbsp;[Poster].<\/p>\n                    <p>18.&nbsp;Baluk, M. A. (2025).&nbsp;<em>MOF&nbsp;&#8211; sorbenty, katalizatory i&nbsp;fotokatalizatory<\/em>&nbsp;[Poster].<\/p>\n                    <p>19.&nbsp;Baluk, M. A. (2025).&nbsp;<em>MOFs &#8211; structures that absorb, catalyze and photocatalyze<\/em>&nbsp;[Poster].<\/p>\n                    <p>20.&nbsp;Jutrzenka Trzebiatowska, P., Baluk, M. A., Gazda, M., &amp; Zaleska-Medynska, A. (2025).&nbsp;<em>Metal-organic frameworks (MOFs) as catalysts in plastic depolymerization reactions<\/em>&nbsp;[Poster].<\/p>\n                    <p>21.&nbsp;Miody\u0144ska-Melzer, M., Baluk, M. A., &amp; Zaleska-Medynska, A. (2025).&nbsp;<em>Design and characterization of copper-organic frameworks with chromophoric ligands<\/em>&nbsp;[Poster].<\/p>\n                    <p>22.&nbsp;Baluk, M. A., Pieczy\u0144ska, A., Kroczewska, M., Mazierski, P., Miko\u0142ajczyk, A., Nikiforow, K., Do\u0142\u017conek, J., \u0141uczak, J., &amp; Zaleska-Medynska, A. (2024).&nbsp;<em>MOFs jako klucz do zielonej przysz\u0142o\u015bci &#8211; czyli od redukcji CO2, do fotodegradacji zanieczyszcze\u0144<\/em>&nbsp;[Paper\n                      presented].<\/p>\n                    <p>23.&nbsp;Baluk, M. A. (2024).&nbsp;<em>MOFs w dobie AI &#8211; perspektywy i wyzwania<\/em>&nbsp;[Paper presented].<\/p>\n                    <p>24.&nbsp;Drze\u017cd\u017con, J., Dai, S., Fan, H., Sikorski, A., Baluk, M. A., Ranskiy, A., &amp; Jacewicz, D. (2024).&nbsp;<em>Innowacyjny, monokrystaliczny zwi\u0105zek koordynacyjny oksowanadu(IV) stosowany jako prekatalizator w procesie polimeyzacji olefin oraz sorbent CO2<\/em>&nbsp;[Paper\n                      presented].<\/p>\n                    <p>25.&nbsp;Khadem, S. S. M., Kroczewska, M., Baluk, M. A., Mazierski, P., Zaleska-Medynska, A., &amp; \u0141uczak, J. (2024).&nbsp;<em>Photocatalytic conversion of CO2 into valuable products by porphyrin based metal-organic frameworks<\/em>&nbsp;[Paper\n                      presented].<\/p>\n                    <p>26.&nbsp;Pob\u0142ocki, K., Bia\u0142ek, M., Jarzembska, K. N., Kami\u0144ski, R., Baluk, M. A., Rybi\u0144ski, P., Drze\u017cd\u017con, J., Gawdzik, B., Pawlak, M., &amp; Jacewicz, D. (2024).&nbsp;<em>W\u0142a\u015bciwo\u015bci katalityczne nowych klatek molibdenowych(VI) i zastosowanie w syntezie materia\u0142\u00f3w polimerowych<\/em>&nbsp;[Paper\n                      presented].<\/p>\n                    <p>27.&nbsp;Baluk, M. A. (2024).&nbsp;<em>Materials of the future based on MOFs \u2013 photocatalysts for generating hydrogen and purifying water<\/em>&nbsp;[Poster].<\/p>\n                    <p>28.&nbsp;Baluk, M. A., Pieczy\u0144ska, A., Mazierski, P., Kroczewska, M., Nikiforow, K., Pawlyta, M., Do\u0142\u017conek, J., \u0141uczak, J., &amp; Zaleska-Medynska, A. (2024).&nbsp;<em>New MOF-based composites for photocatalysis<\/em>&nbsp;[Poster].<\/p>\n                    <p>29.&nbsp;Baluk, M. A., Pieczy\u0144ska, A., Kroczewska, M., \u0141uczak, J., Matus, K., Nikiforow, K., &amp; Zaleska-Medynska, A. (2024).&nbsp;<em>Szybka i \u0142agodna metoda syntezy oktaedrycznych NH2-MIL-125 (Ti)<\/em>&nbsp;[Poster].<\/p>\n                    <p>30.&nbsp;Baluk, M. A., Pieczy\u0144ska, A., Mazierski, P., Kroczewska, M., Nikiforow, K., Miko\u0142ajczyk, A., Do\u0142\u017conek, J., \u0141uczak, J., &amp; Zaleska-Medynska, A. (2024).&nbsp;<em>The future of MOF-based composites: from CO2 reduction to photodegradation of pollutants<\/em>&nbsp;[Poster].<\/p>\n                    <p>31.&nbsp;Khadem, S. S. M., Kroczewska, M., Baluk, M. A., Mazierski, P., Zaleska-Medynska, A., &amp; \u0141uczak, J. (2024).&nbsp;<em>Photocatalytic conversion of CO2 into valuable products by porphyrin based metal-organic frameworks<\/em>&nbsp;[Poster].<\/p>\n                    <p>32.&nbsp;Pob\u0142ocki, K., Bia\u0142ek, M., Jarzembska, K. N., Baluk, M. A., Kami\u0144ski, R., Drze\u017cd\u017con, J., &amp; Jacewicz, D. (2024).&nbsp;<em>A new generation of polymeric CO2 sorption materials synthesized using an acetylacetonate oxovanadium(IV) coordination compound as precatalyst<\/em>&nbsp;[Poster].<\/p>\n                    <p>33.&nbsp;Baluk, M. A. (2023).&nbsp;<em>Metalizowane szkielety metalo-organiczne do fotokonwersji CO2<\/em>&nbsp;[Paper presented].<\/p>\n                    <p>34.&nbsp;Baluk, M. A., Pieczy\u0144ska, A., Jutrzenka Trzebiatowska, P., Kroczewska, M., \u0141uczak, J., &amp; Zaleska-Medynska, A. (2023).&nbsp;<em>MOF-74: uniwersalny klucz do eko-innowacji<\/em>&nbsp;[Paper presented].<\/p>\n                    <p>35.&nbsp;Khadem, S. S. M., Kroczewska, M., Baluk, M. A., Zdybel, S., Pieczy\u0144ska, A., Mazierski, P., \u0141uczak, J., &amp; Zaleska-Medynska, A. (2023).&nbsp;<em>Comparative study of copper-based MOFs for CO2 sorption<\/em>&nbsp;[Paper presented].<\/p>\n                    <p>36.&nbsp;Baluk, M. A., Makowski, D., &amp; Zaleska-Medynska, A. (2023).&nbsp;<em>Coloured MOFs-TiO2 composites for photodegradation of pollutants<\/em>&nbsp;[Poster].<\/p>\n                    <p>37.&nbsp;Baluk, M. A., Pieczy\u0144ska, A., Mazierski, P., Kroczewska, M., \u0141uczak, J., Do\u0142\u017conek, J., &amp; Zaleska-Medynska, A. (2023).&nbsp;<em>Effect of copper and silver modification of MOF on the photoreduction of CO2<\/em>&nbsp;[Poster].<\/p>\n                    <p>38.&nbsp;Baluk, M. A., Makowski, D., &amp; Zaleska-Medynska, A. (2023).&nbsp;<em>Innowacyjne powierzchnie samoczyszcz\u0105ce z wykorzystaniem MOFs jako barwnych pigment\u00f3w<\/em>&nbsp;[Poster].<\/p>\n                    <p>39.&nbsp;Baluk, M. A., Mazierski, P., Pieczy\u0144ska, A., Nikiforow, K., Trykowski, G., Klimczuk, T., &amp; Zaleska-Medynska, A. (2023).&nbsp;<em>Wysokoaktywne struktury TiO2-MOF w reakcji fotogenerowania wodoru i fotodegradacji zanieczyszcze\u0144<\/em>&nbsp;[Poster].<\/p>\n                    <p>40.&nbsp;Donat, J., Makowski, D., &amp; Baluk, M. A. (2023).&nbsp;<em>W\u0142a\u015bciwo\u015bci cz\u0105stek ZnO otrzymywanymi metodami zielonej chemii<\/em>&nbsp;[Poster].<\/p>\n                    <p>41.&nbsp;\u0141ada, D., Pob\u0142ocki, K., Laszuk, P., &amp; Baluk, M. A. (2023).&nbsp;<em>Nanocz\u0105stki z\u0142ota jako potencjalne inhibitory wzrostu ro\u015blin<\/em>&nbsp;[Poster].<\/p>\n                    <p>42.&nbsp;Baluk, M. A., Mazierski, P., Pieczy\u0144ska, A., Klimczuk, T., Trykowski, G., &amp; Zaleska-Medynska, A. (2022).&nbsp;<em>Fotoaktywne heterokompozyty TiO2\/M utworzone z metaloorganicznych szkielet\u00f3w<\/em>&nbsp;[Paper presented].<\/p>\n                    <p>43.&nbsp;Baluk, M. A. (2022).&nbsp;<em>Wysokoaktywne materia\u0142y wykorzystywane w procesach fotokatalitycznych i ich zastosowanie w ochronie \u015brodowiska<\/em>&nbsp;[Paper presented].<\/p>\n                    <p>44.&nbsp;Makowski, D., Baluk, M. A., &amp; Adamska, E. (2022).&nbsp;<em>Synteza cz\u0105stek ZnO z wykorzystaniem metod zielonej chemii<\/em>&nbsp;[Paper presented].<\/p>\n                    <p>45.&nbsp;Baluk, M. A., Mazierski, P., Pieczy\u0144ska, A., Klimczuk, T., Trykowski, G., &amp; Zaleska-Medynska, A. (2022).&nbsp;<em>\u201eErytrocytowe\u201d heterokompozyty o wysokiej aktywno\u015bci fotokatalityczej<\/em>&nbsp;[Poster].<\/p>\n                    <p>46.&nbsp;Baluk, M. A., Mazierski, P., Zaleska-Medynska, A., Kroczewska, M., &amp; \u0141uczak, J. (2022).&nbsp;<em>Effect of metallization and amino acid ionic liquids on the photoconversion efficiency of carbon dioxide by NH2-MIL-125(Ti)<\/em>&nbsp;[Poster].<\/p>\n                    <p>47.&nbsp;Baluk, M. A. (2022).&nbsp;<em>Heterostructures of MOFs and TiO2 &#8211; like erythrocytes for hydrogen photogeneration and photodegradation of pollutants<\/em>&nbsp;[Poster].<\/p>\n                    <p>48.&nbsp;Baluk, M. A., Mazierski, P., Pieczy\u0144ska, A., Nikiforow, K., Trykowski, G., Klimczuk, T., &amp; Zaleska-Medynska, A. (2022).&nbsp;<em>Heterostructures of MOFs and TiO2-like erythrocytes for hydrogen photogeneration and photodegradation of pollutants<\/em>&nbsp;[Poster].<\/p>\n                    <p>49.&nbsp;Baluk, M. A., Mazierski, P., Zaleska-Medynska, A., Kroczewska, M., &amp; \u0141uczak, J. (2022).&nbsp;<em>New materials based on metallized MOFs fot photocatalysis<\/em>&nbsp;[Poster].<\/p>\n                    <p>50.&nbsp;Baluk, M. A., Makowski, D., &amp; Zaleska-Medynska, A. (2022).&nbsp;<em>Nowy typ powierzchni samoczyszcz\u0105cych opartych na metalo-organicznych szkieletach<\/em>&nbsp;[Poster].<\/p>\n                    <p>51.&nbsp;Baluk, M. A., Makowski, D., &amp; Adamska, E. (2022).&nbsp;<em>Synteza i charakterystyka tlenku cynku otrzymanego metodami zielonej chemii<\/em>&nbsp;[Poster].<\/p>\n                    <p>52.&nbsp;Baluk, M. A., &amp; Zaleska-Medynska, A. (2022).&nbsp;<em>W\u0142a\u015bciwo\u015bci fotokatalityczne nanorurek TiO2 z osadzonymi metalo-organicznymi szkieletami<\/em>&nbsp;[Poster].<\/p>\n                    <p>53.&nbsp;Baluk, M. A., &amp; Zaleska-Medynska, A. (2022).&nbsp;<em>Wp\u0142yw MOFs na bazie kwasu 2-aminotereftalowego na w\u0142a\u015bciwo\u015bci nanorurek ditlenku tytanu<\/em>&nbsp;[Poster].<\/p>\n                    <p>54.&nbsp;Cavdar, O., Baluk, M. A., Malankowska, A., \u017bak, A., Lisowski, W., Klimczuk, T., &amp; Zaleska-Medynska, A. (2022).&nbsp;<em>Photocatalytic hydrogen evolution from glycerol-water mixture over BiOCl@ZnIn2S4 composite with ultra-low in-situ Pt loading<\/em>&nbsp;[Poster].<\/p>\n                    <p>55.&nbsp;Cavdar, O., Baluk, M. A., Malankowska, A., \u017bak, A., Lisowski, W., Klimczuk, T., &amp; Zaleska-Medynska, A. (2022).&nbsp;<em>Photocatalytic hydrogen evolution from glycerol-water mixture over ZnIn2S4 obtained on Bi-based semiconductor as a template<\/em>&nbsp;[Poster].<\/p>\n                    <p>56.&nbsp;Czechowicz, M., &amp; Baluk, M. A. (2022).&nbsp;<em>Nanocz\u0105stki metaliczne otrzymywane metodami \u201ezielonej chemii\u201d<\/em>&nbsp;[Poster].<\/p>\n                    <p>57.&nbsp;Jutrzenka Trzebiatowska, P., Baluk, M. A., Zaleska-Medynska, A., &amp; Gazda, M. (2022).&nbsp;<em>Potential use of MOFs as catalysts for glycolysis of poly(terephthalate ethylene)<\/em>&nbsp;[Poster].<\/p>\n                    <p>58.&nbsp;Makowski, D., Baluk, M. A., &amp; Bajorowicz, B. (2022).&nbsp;<em>Synthesis and characterization of composites consisted of G-C3N4 and NTU-9 metal-organic frameworks<\/em>&nbsp;[Poster].<\/p>\n                    <p>59.&nbsp;Makowski, D., Baluk, M. A., &amp; Zaleska-Medynska, A. (2022).&nbsp;<em>Szkielety metaloorganiczne w powierzchniach samoczyszcz\u0105cych<\/em>&nbsp;[Poster].<\/p>\n                    <p>60.&nbsp;Makowski, D., Baluk, M. A., &amp; Adamska, E. (2022).&nbsp;<em>Zinc oxide nanoparticles synthesis using green chemistry methods<\/em>&nbsp;[Poster].<\/p>\n                    <p>61.&nbsp;Mykowska, E., Baluk, M. A., Makowski, D., Manikowska, A., Rulka, O., Adamska, E., &amp; Laszuk, P. (2022).&nbsp;<em>Powierzchnie samoczyszcz\u0105ce o w\u0142a\u015bciwo\u015bciach fotokatalitycznych do degradacji barwnik\u00f3w tekstylnych \u2013 projekt NKCh klimatyczni<\/em>&nbsp;[Poster].<\/p>\n                    <p>62.&nbsp;Zdybel, S., Mazierski, P., Baluk, M. A., Kroczewska, M., \u0141uczak, J., &amp; Zaleska-Medynska, A. (2022).&nbsp;<em>Iron-based metal-organic framework: Synthesis, structure and possible use in carbon dioxide photoconversion<\/em>&nbsp;[Poster].<\/p>\n                    <p>63.&nbsp;Zdybel, S., Mazierski, P., Baluk, M. A., Kroczewska, M., \u0141uczak, J., &amp; Zaleska-Medynska, A. (2022).&nbsp;<em>\u017belazowe szkielety metaloorganiczne: synteza, w\u0142a\u015bciwo\u015bci oraz potencjalne wykorzystanie w procesach fotokonwersji CO2<\/em>&nbsp;[Poster].<\/p>\n                    <p>64.&nbsp;Baluk, M. A., &amp; Zaleska-Medynska, A. (2021).&nbsp;<em>Analiza wybranych w\u0142a\u015bciwo\u015bci fizykochemicznych oraz morfologii makro-i nanocz\u0105stek TiO2 otrzymanych z wykorzystaniem bia\u0142ek jako matrycy<\/em>&nbsp;[Poster].<\/p>\n                    <p>65.&nbsp;Baluk, M. A., &amp; Zaleska-Medynska, A. (2021).&nbsp;<em>Kompozyty ditlenku tytanu z MOFs oraz metalami szlachetnymi do wydajnej fotokonwersji dwutlenku w\u0119gla<\/em>&nbsp;[Poster].<\/p>\n                    <p>66.&nbsp;Baluk, M. A., &amp; Zaleska-Medynska, A. (2021).&nbsp;<em>Metody pre- i post-syntetycznej funkcjonalizacji MOFs do zwi\u0119kszenia w\u0142a\u015bciwo\u015bci sorpcyjnych i katalitycznych<\/em>&nbsp;[Poster].<\/p>\n                    <p>67.&nbsp;Baluk, M. A., &amp; Zaleska-Medynska, A. (2021).&nbsp;<em>Post-syntetyczne metody funkcjonalizacji szkielet\u00f3w metaloorganicznych<\/em>&nbsp;[Poster].<\/p>\n                    <p>68.&nbsp;Baluk, M. A., &amp; Zaleska-Medynska, A. (2021).&nbsp;<em>Selektywna modyfikacja MOFs do wydajnej sorpcji i fotokonwersji CO2<\/em>&nbsp;[Poster].<\/p>\n                    <p>69.&nbsp;Baluk, M. A., &amp; Zaleska-Medynska, A. (2021).&nbsp;<em>Tr\u00f3jsk\u0142adnikowe komponenty z\u0142o\u017cone z TiO2, NH2-MIL-125 (Ti) oraz metali szlachetnych do wydajnego fotogenerowania wodoru<\/em>&nbsp;[Poster].<\/p>\n                    <p>70.&nbsp;Baluk, M. A., &amp; Zaleska-Medynska, A. (2021).&nbsp;<em>Wp\u0142yw NH2-UiO-66 (Zr) osadzonych na powierzchni TiO2 NTs na w\u0142a\u015bciwo\u015bci fotodegraduj\u0105ce zanieczyszczenia<\/em>&nbsp;[Poster].<\/p>\n                    <p>71.&nbsp;Baluk, M. A., &amp; Zaleska-Medynska, A. (2021).&nbsp;<em>Wp\u0142yw st\u0119\u017cenia 2,5-dihydroksytereftalowego kwasu i soli magnezu na morfologi\u0119 oraz w\u0142a\u015bciwo\u015bci MOF-74 (Mg)<\/em>&nbsp;[Poster].<\/p>\n                    <p>72.&nbsp;Baluk, M. A., &amp; Zaleska-Medynska, A. (2021).&nbsp;<em>Wp\u0142yw warunk\u00f3w syntezy na morfologi\u0119 i w\u0142a\u015bciwo\u015bci Ti-MOF<\/em>&nbsp;[Poster].<\/p>\n                    <p>73.&nbsp;Baluk, M. A., &amp; Zaleska-Medynska, A. (2021).&nbsp;<em>Wysokoaktywne kompozyty hydrolizy MIL-125-NH2 (Ti) modyfikowane z\u0142otem do fotokonwersji CO2<\/em>&nbsp;[Poster].<\/p>\n                    <p>74.&nbsp;Makowski, D., Baluk, M. A., Manikowska, A., Mykowska, E., Rulka, O., &amp; Adamska, E. (2021).&nbsp;<em>Synteza Powierzchni Samoczyszcz\u0105cych &#8211; Projekt NKCh Klimatyczni<\/em>&nbsp;[Poster].<\/p>\n                    <p>75.&nbsp;Manikowska, A., Baluk, M. A., Makowski, D., Mykowska, E., Rulka, O., Adamska, E., &amp; Laszuk, P. (2021).&nbsp;<em>Fotokatalityczne w\u0142a\u015bciwo\u015bci TIO2 \u2013 projekt NKCh UG: klimatyczni<\/em>&nbsp;[Poster].<\/p>\n                    <p>76.&nbsp;Baluk, M. A. (2020).&nbsp;<em>Metalorganic frameworks as organic and inorganic relationships<\/em>&nbsp;[Poster].<\/p>\n                    <p>77.&nbsp;Baluk, M. A. (2020).&nbsp;<em>Photocatalytic properties of self-cleaning coatings<\/em>&nbsp;[Poster].<\/p>\n                    <p>78.&nbsp;Baluk, M. A., Mazierski, P., Kozak, M., \u017bebrowska, J., &amp; Zaleska-Medynska, A. (2020).&nbsp;<em>W\u0142a\u015bciwo\u015bci nanorurek wykonanych metod\u0105 utlenienia anodowego stop\u00f3w TiAgCu oraz TiAgPt<\/em>&nbsp;[Poster].<\/p>\n                    <p>79.&nbsp;Baluk, M. A. (2020).&nbsp;<em>Wp\u0142yw warunk\u00f3w syntezy na morfologi\u0119 otrzymywanych NH2-MIL-125<\/em>&nbsp;[Poster].<\/p>\n                    <p>80.&nbsp;Makowski, D., &amp; Baluk, M. A. (2020).&nbsp;<em>Charakterystyka wybranych maszyn molekularnych<\/em>&nbsp;[Poster].<\/p>\n                    <p>81.&nbsp;Makowski, D., &amp; Baluk, M. A. (2020).&nbsp;<em>Mechanizm \u201eczyszczenia\u201d w powierzchniach samoczyszcz\u0105cych<\/em>&nbsp;[Poster].<\/p>\n                    <p>82.&nbsp;Rulka, O., &amp; Baluk, M. A. (2020).&nbsp;<em>Zastosowanie powierzchni samoczyszcz\u0105cych w ochronie \u015brodowiska<\/em>&nbsp;[Poster].<\/p>\n                    <p>83.&nbsp;Baluk, M. A. (2019).&nbsp;<em>Powierzchnie samoczyszcz\u0105ce<\/em>&nbsp;[Paper presented].<\/p>\n                    <p>84.&nbsp;Baluk, M. A., Kobyla\u0144ski, M., Lisowski, W., Trykowski, G., Klimczuk, T., Mazierski, P., &amp; Zaleska-Medynska, A. (2019).&nbsp;<em>Synteza uporz\u0105dkowanych powierzchni nanorurek Ta2O5 dekorowanymi kropkami kwantowymi Bi2S3<\/em>&nbsp;[Paper\n                      presented].<\/p>\n                    <p>85.&nbsp;Baluk, M. A., Kobyla\u0144ski, M., Klimczuk, T., Lisowski, W., Trykowski, G., Mazierski, P., &amp; Zaleska-Medynska, A. (2019).&nbsp;<em>W\u0142a\u015bciwo\u015bci fotokatalityczne nanorurek tlenku tantalu (V)<\/em>&nbsp;[Paper presented].<\/p>\n                    <p>86.&nbsp;Baluk, M. A. (2019).&nbsp;<em>Zastosowania fotokatalizy &#8211; fotodegradacja zanieczyszcze\u0144, fotorozk\u0142ad wody oraz fotokonwersja CO2<\/em>&nbsp;[Poster].<\/p>\n                    <p>87.&nbsp;Baluk, M. A., Kobyla\u0144ski, M., Mazierski, P., &amp; Zaleska-Medynska, A. (2018).&nbsp;<em>Wp\u0142yw modyfikacji powierzchni na w\u0142a\u015bciwo\u015bci fotokatalityczne nanorurek tlenku tantalu(V)<\/em>&nbsp;[Paper presented].<\/p>\n                    <p>88.&nbsp;Baluk, M. A., Kobyla\u0144ski, M., Mazierski, P., &amp; Zaleska-Medynska, A. (2018).&nbsp;<em>Fotokatalityczne w\u0142a\u015bciwo\u015bci Ta2O5@Bi2S3 NTS<\/em>&nbsp;[Poster].<\/p>\n                    <p>89.&nbsp;Baluk, M. A., &amp; Czaja, A. M. (2018).&nbsp;<em>Neuroglobina &#8211; rozwi\u0105zanie na zatrucie czadem<\/em>&nbsp;[Poster].<\/p>\n                    <p>90.&nbsp;Baluk, M. A., &amp; Czaja, A. M. (2018).&nbsp;<em>Post-styropianowe filtry wody<\/em>&nbsp;[Poster].<\/p>\n                    <p>91.&nbsp;Baluk, M. A., Kobyla\u0144ski, M., Mazierski, P., &amp; Zaleska-Medynska, A. (2018).&nbsp;<em>Synteza Ta2O5 NTs i ich zastosowanie w fotodegradacji<\/em>&nbsp;[Poster].<\/p>\n                    <p>92.&nbsp;Baluk, M. A., Kobyla\u0144ski, M., Mazierski, P., &amp; Zaleska-Medynska, A. (2018).&nbsp;<em>Synthesis of Ta2O5 nanotubes for photocatalytic application<\/em>&nbsp;[Poster].<\/p>\n                    <p>93.&nbsp;Baluk, M. A. (2018).&nbsp;<em>Zastosowanie dwukierunkowych faz lipidowych jako potencjalnych transporter\u00f3w lek\u00f3w<\/em>&nbsp;[Poster].<\/p>\n                    <p>94.&nbsp;Baluk, M. A., &amp; Klimkowski, K. (2018).&nbsp;<em>Zastosowanie neuroglobiny jako potencjalnego leku na zatrucie tlenkiem w\u0119gla(II)<\/em>&nbsp;[Poster].<\/p>\n                    <p>95.&nbsp;Kobyla\u0144ski, M., Juchno, Z., Baluk, M. A., &amp; Zaleska-Medynska, A. (2018).&nbsp;<em>Deposition of gold nanoparticles on titanium nanopits<\/em>&nbsp;[Poster].<\/p>\n                    <p>96.&nbsp;Baluk, M. A., Kobyla\u0144ski, M., Mazierski, P., &amp; Zaleska-Medynska, A. (2017).&nbsp;<em>Synteza, w\u0142a\u015bciwo\u015bci i zastosowanie nanorurek tlenku tantalu (V)<\/em>&nbsp;[Paper presented].<\/p>\n                    <p>97.&nbsp;Baluk, M. A., Mazierski, P., Kobyla\u0144ski, M., &amp; Zaleska-Medynska, A. (2017).&nbsp;<em>W\u0142a\u015bciwo\u015bci i zastosowanie nanorurek Ta2O5 w degradacji zanieczyszcze\u0144 w fazie gazowej<\/em>&nbsp;[Paper presented].<\/p>\n                    <p>98.&nbsp;Baluk, M. A., Mazierski, P., &amp; Kobyla\u0144ski, M. (2017).&nbsp;<em>Optymalizacja syntezy nanorurek Ta2O5 do fotokatalitycznej degradacji zanieczyszcze\u0144 w fazie gazowej<\/em>&nbsp;[Poster].<\/p>\n                    <p>99.&nbsp;Baluk, M. A., &amp; Zaleska-Medynska, A. (2017).&nbsp;<em>Zastosowanie nanorurek w\u0119glowych w medycynie<\/em>&nbsp;[Poster].<\/p>\n                    <p>100.&nbsp;&nbsp;&nbsp;&nbsp;&nbsp;&nbsp;&nbsp;&nbsp;&nbsp;&nbsp;&nbsp;&nbsp;&nbsp;&nbsp;&nbsp;&nbsp;&nbsp;&nbsp;&nbsp;&nbsp;&nbsp;&nbsp;&nbsp;&nbsp;Baluk, M. A., &amp; Kobyla\u0144ski, M. (2017).&nbsp;<em>Zastosowanie nanorurek wodorowanego TiO2 do degradacji zanieczyszcze\u0144 w fazie wodnej<\/em>&nbsp;[Poster].<\/p>\n                    <p>101.&nbsp;&nbsp;&nbsp;&nbsp;&nbsp;&nbsp;&nbsp;&nbsp;&nbsp;&nbsp;&nbsp;&nbsp;&nbsp;&nbsp;&nbsp;&nbsp;&nbsp;&nbsp;&nbsp;&nbsp;&nbsp;&nbsp;&nbsp;&nbsp;Kobyla\u0144ski, M., Baluk, M. A., Mazierski, P., &amp; Zaleska-Medynska, A. (2017).&nbsp;<em>Modified Ta2O5 nanotubes for photocatalytic application<\/em>&nbsp;[Poster].<\/p>\n                    <p>\n                      <br>\n                    <\/p>\n                  <\/div>\n                <\/div>\n              <\/div>\n            <\/div>\n          <\/div>\n        <\/div>\n      <\/div>\n    <\/div>\n  <\/div>\n<\/div>","protected":false},"excerpt":{"rendered":"<p>Konferencje 1.&nbsp;&nbsp;&nbsp;&nbsp;&nbsp;&nbsp;Baluk, M. A., Gontarek-Castro, E., Nikiforow, K., Kroczewska-Gnatowska, M., Mazierski, P., \u0141uczak, J., &amp; Zaleska-Medynska, A. (2026).&nbsp;Application of MOFs in Heterogeneous Photocatalysis&nbsp;[Paper presented]. 2.&nbsp;&nbsp;&nbsp;&nbsp;&nbsp;&nbsp;Drze\u017cd\u017con, J., Parcheta-Szwindowska, P., Baluk, M. A., Chernyayeva, O., Liu, Y., &amp; Pinna, N. (2026).&nbsp;Water-Based Polymerization of Methyl Methacrylate on Modified TiO\u2082 Nanotubes&nbsp;[Paper presented]. 3.&nbsp;&nbsp;&nbsp;&nbsp;&nbsp;&nbsp;Pieczy\u0144ska, A., Mazierski, P., Baluk, M. A., [&hellip;]<\/p>\n","protected":false},"author":1,"featured_media":0,"parent":0,"menu_order":0,"comment_status":"closed","ping_status":"closed","template":"page-templates\/full-width-page.php","meta":{"footnotes":""},"class_list":["post-965","page","type-page","status-publish","hentry"],"_links":{"self":[{"href":"https:\/\/mateuszadam.com\/index.php\/wp-json\/wp\/v2\/pages\/965","targetHints":{"allow":["GET"]}}],"collection":[{"href":"https:\/\/mateuszadam.com\/index.php\/wp-json\/wp\/v2\/pages"}],"about":[{"href":"https:\/\/mateuszadam.com\/index.php\/wp-json\/wp\/v2\/types\/page"}],"author":[{"embeddable":true,"href":"https:\/\/mateuszadam.com\/index.php\/wp-json\/wp\/v2\/users\/1"}],"replies":[{"embeddable":true,"href":"https:\/\/mateuszadam.com\/index.php\/wp-json\/wp\/v2\/comments?post=965"}],"version-history":[{"count":3,"href":"https:\/\/mateuszadam.com\/index.php\/wp-json\/wp\/v2\/pages\/965\/revisions"}],"predecessor-version":[{"id":1201,"href":"https:\/\/mateuszadam.com\/index.php\/wp-json\/wp\/v2\/pages\/965\/revisions\/1201"}],"wp:attachment":[{"href":"https:\/\/mateuszadam.com\/index.php\/wp-json\/wp\/v2\/media?parent=965"}],"curies":[{"name":"wp","href":"https:\/\/api.w.org\/{rel}","templated":true}]}}