TY - JOUR A1 - Youk, Sol A1 - Hofmann, Jan P. A1 - Badamdorj, Bolortuya A1 - Volkel, Antje A1 - Antonietti, Markus A1 - Oschatz, Martin T1 - Controlling pore size and pore functionality in sp(2)-conjugated microporous materials by precursor chemistry and salt templating JF - Journal of materials chemistry : A, Materials for energy and sustainability N2 - The synthesis of sp(2)-conjugated, heteroatom-rich, "carbonaceous" materials from economically feasible raw materials and salt templates is reported. Low cost citrazinic acid (2,6-dihydroxy-4-pyridinecarboxylic acid) and melamine are used as components to form a microporous, amorphous framework, where edges of the covalent frameworks are tightly terminated with nitrogen and oxygen moieties. ZnCl2 as the porogen stabilizes structural microporosity as well as nitrogen and oxygen heteroatoms up to comparably high condensation temperatures of 750 and 950 degrees C. The specific surface area up to 1265 m(2) g(-1) is mainly caused by micropores and typical of heteroatom-rich carbon materials with such structural porosity. The unusually high heteroatom content reveals that the edges and pores of the covalent structures are tightly lined with heteroatoms, while C-C or C-H bonds are expected to have a minor contribution as compared to typical carbon materials without or with minor content of heteroatoms. Adsorption of water vapor and carbon dioxide are exemplarily chosen to illustrate the impact of this heteroatom functionalization under salt-templating conditions on the adsorption properties of the materials. 27.10 mmol g(-1) of H2O uptake (at p/p(0) = 0.9) can be achieved, which also proves the very hydrophilic character of the pore walls, while the maximum CO2 uptake (at 273 K) is 5.3 mmol g(-1). At the same time the CO2/N-2 adsorption selectivity at 273 K can reach values of up to 60. All these values are beyond those of ordinary high surface area carbons, also differ from those of N-doped carbons, and are much closer to those of organized framework species, such as C2N. Y1 - 2020 U6 - https://doi.org/10.1039/d0ta05856d SN - 2050-7488 SN - 2050-7496 VL - 8 IS - 41 SP - 21680 EP - 21689 PB - Royal Society of Chemistry CY - Cambridge ER - TY - THES A1 - Youk, Sol T1 - Molecular design of heteroatom-doped nanoporous carbons with controlled porosity and surface polarity for gas physisorption and energy storage N2 - The world energy consumption has constantly increased every year due to economic development and population growth. This inevitably caused vast amount of CO2 emission, and the CO2 concentration in the atmosphere keeps increasing with economic growth. To reduce CO2 emission, various methods have been developed but there are still many bottlenecks to be solved. Solvents easily absorbing CO2 such as monoethanol-amine (MEA) and diethanolamine, for example, have limitations of solvent loss, amine degradation, vulnerability to heat and toxicity, and the high cost of regeneration which is especially caused due to chemisorption process. Though some of these drawbacks can be compensated through physisorption with zeolites and metal-organic frameworks (MOFs) by displaying significant adsorption selectivity and capacity even in ambient conditions, limitations for these materials still exist. Zeolites demand relatively high regeneration energy and have limited adsorption kinetics due to the exceptionally narrow pore structure. MOFs have low stability against heat and moisture and high manufacturing cost. Nanoporous carbons have recently received attention as an attractive functional porous material due to their unique properties. These materials are crucial in many applications of modern science and industry such as water and air purification, catalysis, gas separation, and energy storage/conversion due to their high chemical and thermal stability, and in particular electronic conductivity in combination with high specific surface areas. Nanoporous carbons can be used to adsorb environmental pollutants or small gas molecules such as CO2 and to power electrochemical energy storage devices such as batteries and fuel cells. In all fields, their pore structure or electrical properties can be modified depending on their purposes. This thesis provides an in-depth look at novel nanoporous carbons from the synthetic and the application point of view. The interplay between pore structure, atomic construction, and the adsorption properties of nanoporous carbon materials are investigated. Novel nanoporous carbon materials are synthesized by using simple precursor molecules containing heteroatoms through a facile templating method. The affinity, and in turn the adsorption capacity, of carbon materials toward polar gas molecules (CO2 and H2O) is enhanced by the modification of their chemical construction. It is also shown that these properties are important in electrochemical energy storage, here especially for supercapacitors with aqueous electrolytes which are basically based on the physisorption of ions on carbon surfaces. This shows that nanoporous carbons can be a “functional” material with specific physical or chemical interactions with guest species just like zeolites and MOFs. The synthesis of sp2-conjugated materials with high heteroatom content from a mixture of citrazinic acid and melamine in which heteroatoms are already bonded in specific motives is illustrated. By controlling the removal procedure of the salt-template and the condensation temperature, the role of salts in the formation of porosity and as coordination sites for the stabilization of heteroatoms is proven. A high amount of nitrogen of up to 20 wt. %, oxygen contents of up to 19 wt.%, and a high CO2/N2 selectivity with maximum CO2 uptake at 273 K of 5.31 mmol g–1 are achieved. Besides, the further controlled thermal condensation of precursor molecules and advanced functional properties on applications of the synthesized porous carbons are described. The materials have different porosity and atomic construction exhibiting a high nitrogen content up to 25 wt. % as well as a high porosity with a specific surface area of more than 1800 m2 g−1, and a high performance in selective CO2 gas adsorption of 62.7. These pore structure as well as properties of surface affect to water adsorption with a remarkably high Qst of over 100 kJ mol−1 even higher than that of zeolites or CaCl2 well known as adsorbents. In addition to that, the pore structure of HAT-CN-derived carbon materials during condensation in vacuum is fundamentally understood which is essential to maximize the utilization of porous system in materials showing significant difference in their pore volume of 0.5 cm3 g−1 and 0.25 cm3 g−1 without and with vacuum, respectively. The molecular designs of heteroatom containing porous carbon derived from abundant and simple molecules are introduced in the presented thesis. Abundant precursors that already containing high amount of nitrogen or oxygen are beneficial to achieve enhanced interaction with adsorptives. The physical and chemical properties of these heteroatom-doped porous carbons are affected by mainly two parameters, that is, the porosity from the pore structure and the polarity from the atomic composition on the surface. In other words, controlling the porosity as well as the polarity of the carbon materials is studied to understand interactions with different guest species which is a fundamental knowledge for the utilization on various applications. N2 - Nanoporöse Kohlenstoffe haben in letzter Zeit aufgrund ihrer einzigartigen Eigenschaften als ein attraktives funktionelles poröses Material Aufmerksamkeit erregt. Diese Materialien sind aufgrund ihrer hohen chemischen und thermischen Stabilität und insbesondere aufgrund ihrer elektronischen Leitfähigkeit in Kombination mit hohen spezifischen Oberflächen von entscheidender Bedeutung für viele Anwendungen der modernen Wissenschaft und Industrie wie Wasser- und Luftreinigung, Katalyse, Gastrennung und Energiespeicherung/-umwandlung. Nanoporöse Kohlenstoffe können verwendet werden, um Umweltschadstoffe oder kleine Gasmoleküle wie CO2 zu adsorbieren und elektrochemische Energiespeicher wie Batterien und Brennstoffzellen anzutreiben. Ihre Porenstruktur oder ihre elektrischen Eigenschaften je nach Einsatzzweck modifiziert werden. Diese Arbeit bietet einen eingehenden Blick auf neuartige nanoporöse Kohlenstoffe aus synthetischer und anwendungstechnischer Sicht. Das Zusammenspiel zwischen Porenstruktur, atomarem Aufbau und den Adsorptionseigenschaften von nanoporösen Kohlenstoffmaterialien wird untersucht. Neuartige nanoporöse Kohlenstoffmaterialien werden unter Verwendung einfacher Vorläufermoleküle, die Heteroatome enthalten, durch ein einfaches Templatverfahren synthetisiert. Die Affinität und damit die Adsorptionskapazität von Kohlenstoffmaterialien gegenüber polaren Gasmolekülen (CO2 und H2O) wird durch die Modifikation ihres chemischen Aufbaus erhöht. Es wird auch gezeigt, dass diese Eigenschaften bei der elektrochemischen Energiespeicherung wichtig sind. Hier insbesondere für Superkondensatoren mit wässrigen Elektrolyten, die grundsätzlich auf der Physisorption von Ionen an Kohlenstoffoberflächen beruhen. Dies zeigt, dass nanoporöse Kohlenstoffe, genauso wie Zeolithen und MOFs, ein „funktionelles“ Material mit spezifischen physikalischen oder chemischen Wechselwirkungen mit Gastspezien sein können. Mit den Vorteilen einer hohen elektrischen Leitfähigkeit, einer gut entwickelten Porenstruktur und einer stark hydrophilen Oberflächenstruktur sind nanoporöse Kohlenstoffe vielversprechende Materialien, die weitreichende Auswirkungen auf verschiedene Bereiche des zukünftigen Energiebedarfs haben. KW - porous carbon KW - gas adsorption KW - energy storage KW - N-doped carbon KW - poröser Kohlenstoff KW - Gasadsorption KW - Energiespeicher KW - N-dotierter Kohlenstoff Y1 - 2022 U6 - http://nbn-resolving.de/urn/resolver.pl?urn:nbn:de:kobv:517-opus4-539098 ER - TY - JOUR A1 - Hwang, Jinyeon A1 - Zhang, Wuyong A1 - Youk, Sol A1 - Schutjajew, Konstantin A1 - Oschatz, Martin T1 - Understanding structure-property relationships under experimental conditions for the optimization of lithium-ion capacitor anodes based on all-carbon-composite materials JF - Energy technology : generation, conversion, storage, distribution N2 - The nanoscale combination of a conductive carbon and a carbon-based material with abundant heteroatoms for battery electrodes is a method to overcome the limitation that the latter has high affinity to alkali metal ions but low electronic conductivity. The synthetic protocol and the individual ratios and structures are important aspects influencing the properties of such multifunctional compounds. Their interplay is, herein, investigated by infiltration of a porous ZnO-templated carbon (ZTC) with nitrogen-rich carbon obtained by condensation of hexaazatriphenylene-hexacarbonitrile (HAT-CN) at 550-1000 degrees C. The density of lithiophilic sites can be controlled by HAT-CN content and condensation temperature. Lithium storage properties are significantly improved in comparison with those of the individual compounds and their physical mixtures. Depending on the uniformity of the formed composite, loading ratio and condensation temperature have different influence. Most stable operation at high capacity per used monomer is achieved with a slowly dried composite with an HAT-CN:ZTC mass ratio of 4:1, condensed at 550 degrees C, providing more than 400 mAh g(-1) discharge capacity at 0.1 A g(-1) and a capacity retention of 72% after 100 cycles of operation at 0.5 A g(-1) due to the homogeneity of the composite and high content of lithiophilic sites. KW - anodes KW - hybrid materials KW - nitrogen-doped carbon KW - porous carbon KW - lithium-ion capacitors Y1 - 2021 U6 - https://doi.org/10.1002/ente.202001054 SN - 2194-4296 VL - 9 IS - 3 PB - Wiley-VCH CY - Weinheim ER -