@phdthesis{Oberndorfer2022, author = {Oberndorfer, Florian}, title = {Photoluminescence and Raman spectroscopy of doped nanomaterials}, doi = {10.25972/OPUS-27854}, url = {http://nbn-resolving.de/urn:nbn:de:bvb:20-opus-278540}, school = {Universit{\"a}t W{\"u}rzburg}, year = {2022}, abstract = {This thesis includes measurements that were recorded by cooperation partners. The EPR spec- trosa mentioned in section 5.2 were recorded by Michael Auth from the Dyakonov Group (Ex- perimental Physics VI, Julius-Maximilians-Universit{\"a}t, W{\"u}rzburg). The TREFISH experiments and transient absorption in section 5.4 spectra were performed by Jašinskas et al. from the V. Gulbi- nas group (Center for Physical Sciences and Technology, Vilnius, Lithuania). This dissertation investigated the interactions of semiconducting single-walled carbon nanotubes (SWNTs) of (6,5) chirality with their environment. Shear-mixing provided high-quality SWNT sus- pensions, which was complemented by various film preparation techniques. These techniques were in turn used to prepare heterostructures with MoS2 and hBN, which were examined with a newly constructed photoluminescence microscope specifically for this purpose. Finally, the change of spectral properties of SWNTs upon doping was investigated in more detail, as well as the behaviour of charge carriers in the tubes themselves. To optimise the SWNT sample preparation techniques that supplied the other experiments, the sample quality of shear-mixed preparations was compared with that of sonicated samples. It was found that the quantum efficiency of sheared suspensions exceeds that of sonicated suspensions as soon as the sonication time exceeds 30 min. The higher PLQY is due to the lower defect concentration in shear-mixed samples. Via transient absorption, a mean lifetime of 17.3 ps and a mean distance between defects of 192.1 nm could be determined. Furthermore, it was found that the increased efficiency of horn sonication is probably not only due to higher shear forces acting on the SWNT bundles but also that the shortening of PFO-BPy strands plays a significant role. Sonication of very long polymer strands significantly increased their effectiveness in shear mixing. While previous approaches could only achieve very low concentrations of SWNTs in suspensions, pre-sonicated polymer yielded results which were comparable with much shorter PFO-BPy batches. Reference experiments also showed that different aggregation processes are relevant during production and further processing. Initial reprocessing of carbon nanotube raw material requires 7 h sonication time and over 24 h shear mixing before no increase in carbon nano concentration is detectable. However, only a few minutes of sonication or shear mixing are required when reprocessing the residue produced during the separation of the slurry. This discrepancy indicates that different aggregates are present, with markedly different aggregation properties. To study low-dimensional heterostructures, a PL microscope was set up with the ability to ob- serve single SWNTs as well as monolayers of other low-dimensional systems. Furthermore, sam- ples were prepared which bring single SWNTs into contact with 2D materials such as h-BN andMoS2 layers and the changes in the photoluminescence spectrum were documented. For h-BN, it was observed whether previous methods for depositing SWNTs could be transferred for photo- luminescence spectroscopy. SWNTs were successfully deposited on monolayers via a modified drip coating, with the limitation that SWNTs aggregate more at the edges of the monolayers. Upon contact of SWNTs with MoS2, significant changes in the emission properties of the mono- layers were observed. The fluorescence, which was mainly dominated by excitons, was shifted towards trion emission. Reference experiments excluded PFO-BPy and toluene as potential causes. Based on the change in the emission behaviour of MoS2, the most plausible explanation is a photoinduced charge transfer leading to delocalised charge carriers on MoS2. In contrast, on SWNTs, the introduction of additional charges would constitute a quenching centre, which would quench their PL emission, making them undetectable in the PL image. In the last chapter, the electronic properties of doped SWNTs and the behaviour of charge carri- ers inside the tubes should be investigated. First, the change in the conductivity of SWNT films with increasing doping levels was docu- mented. The resistance of the films drops drastically at minimum doping. After the initial in- troduction of charges, the resistance drops with increasing dopant concentration according to a double logarithmic curve. The initial drop could be due to a reduction of contact resistances within the SWNT network film, but this could not be further investigated within the scope of this PhD thesis. In cooperation with Andreas Sperlich and Michael Auth, the spin concentration of SWNTs at different doping levels was determined. The obtained concentrations were compared with the carrier concentrations determined from PL and absorption spectra. At low spin densities, good agreement with previous models was found. Furthermore, the presence of isolated spins strongly suggests a localised charge carrier distribution at temperatures around 10 K. When the charge density is increased, the spin density deviates significantly from the charge carrier con- centration. This discrepancy is attributed to the increasing delocalisation of charge carriers at high charge densities and the interactions of neighbouring spins. These results strongly indicate the existence of localised charge carriers in SWNTs at low temperatures. Next, the effect of doping on the Raman spectra of SWNT suspensions was investigated. In gen- eral, doping is expected to reduce the intensity of the Raman bands, i.e. a consequence of the reduced resonance gain due to bleaching of the S2 transition. However, similar to the resistivity measurements, the oscillator strength of the G+ band drops sharply in the first doping steps. It was also found that the G+ band decreases more than would be expected due to loss of reso- nance condition. Furthermore, the G- is bleached faster than the G+ band. All these anomalies suggest that resonance enhancement is not the only relevant effect. Another much faster deac- tivation path for the excitons may be introduced by doping. This would leave less time for the scattering process to occur and reduce the oscillator strength of the Raman bands. In cooperation with Vidmantas et al., the photoinduced charge carrier behaviour of SWNT/PCBM films was investigated. The required films were prepared by drop coating. The SWNT suspen- sions required for this were obtained from sheared SWNT preparations. Using transient absorp- tion and TREFISH, a number of charge transfer effects were identified and their dynamics in- vestigated: the recombination of neutral excitons (< 50 ps), the electron transfer from carbon nanotubes to PCBM molecules (< 1 ps), the decay of charge-transfer excitons (∼200 ps), the recombination of charge carriers between charge-transfer excitons (1 ns to 4 ns) and finally the propagation through the SWNT network (∼20 ns)}, subject = {Einwandige Kohlenstoff-Nanor{\"o}hre}, language = {en} } @phdthesis{Hain2015, author = {Hain, Tilman Christian}, title = {Entwicklung eines experimentellen Aufbaus zur Charakterisierung nanoskaliger Systeme mittels Fluoreszenzspektroskopie und -mikroskopie}, url = {http://nbn-resolving.de/urn:nbn:de:bvb:20-opus-116618}, school = {Universit{\"a}t W{\"u}rzburg}, year = {2015}, abstract = {Die vorliegende Dissertation leistet einen Beitrag zur spektroskopischen Messmethodik nanoskaliger Strukturen. Im Mittelpunkt der Arbeit steht die Entwicklung und Erprobung eines spektrofluorimetrischen Aufbaus, mit dessen Hilfe ein aus Kohlenstoffnanor{\"o}hren und DNA-Oligomeren bestehendes supramolekulares Modellsystem einer optischen Untersuchung zug{\"a}nglich gemacht wird. Die Vielseitigkeit der Messeinheit aus Mikroskop und Spektrometer wird an einer weiteren Substanzklasse untermauert. So wird das Emissionsverhalten von in Siliziumcarbidkristallen induzierten Defektzentren einer r{\"a}umlich, spektral und zeitlich aufgel{\"o}sten Charakterisierung unterzogen. Die zentrale Komponente des Spektrofluorimetrieaufbaus stellt eine Superkontinuumlichtquelle dar. In Verbindung mit einem elektronisch geregelten Filtermodul zur Wellenl{\"a}ngenselektion erlaubt sie die Durchf{\"u}hrung von Photolumineszenz-Anregungsexperimenten. Im Gegensatz zu kommerziell erh{\"a}ltlichen Systemen, die {\"u}berwiegend auf eine spektroskopische Charakterisierung gel{\"o}ster oder kolloidal stabilisierter Substanzen abzielen, erlaubt der hier realisierte Aufbau auch die PL- mikroskopische Untersuchung kondensierter Proben, was durch die Epi-Bauweise auch opake Substrate einschließt. Der Einsatz von InGaAs-Sensoren weitet das Detektionsfenster auf den Nahinfrarotbereich aus, sowohl hinsichtlich des Kamera- als auch des Spektroskopiekanals. Anhand verschiedenartiger Kohlenstoffnanorohrproben, die entweder in fl{\"u}ssiger Phase dispergiert oder in festem Zustand als Film abgeschieden vorliegen, wird die Leistungsf{\"a}higkeit des PLE-Experiments unter Beweis gestellt. Neben der Zuordnung der Chiralit{\"a}ten in polydispersen SWNT-Suspensionen wird dies auch durch die Untersuchung von Energietransferprozessen und die Studie von Umgebungseinfl{\"u}ssen demonstriert. Die Charakterisierung des DNA-SWNT-Modellsystems in mikrofluidischer Umgebung macht von der fluoreszenzmikroskopischen Detektionseinheit Gebrauch. W{\"a}hrend die intrinsische Photolumineszenz der Nanor{\"o}hren sicherstellen soll, dass Letztere in ausreichender Anzahl auf den mikrostrukturierten Substraten vorhanden sind, wird die extrinsische Photolumineszenz der funktionalisierten Oligonukleotide als spektroskopisches Maß f{\"u}r die DNA-Konzentration herangezogen. Das hierbei beobachtete Agglomerationsverhalten der farbstoffmarkierten Oligomere geht mit einer lokal erh{\"o}hten Fluoreszenzintensit{\"a}t einher und erlaubt damit die quantitative Auswertung der auf PL-Einzelbildern basierenden Zeitserien. Zugleich wird damit eine Absch{\"a}tzung der DNA-Belegung auf den Nanor{\"o}hren m{\"o}glich. Im Falle der aus 16 alternierenden Guanin-Thymin-Einheiten bestehenden Basensequenz l{\"o}sen sich nach Initiieren des Desorptionsvorgangs ein Großteil der Oligomere von der Nanorohroberfl{\"a}che ab. Lediglich ein F{\"u}nftel bleibt in adsorbierter Form zur{\"u}ck, was sich jedoch f{\"u}r die Hybridstabilit{\"a}t als ausreichend erweist. Die Freisetzung weiterer Oligomere bleibt bei der Versuchstemperatur von 20 °C trotz der hohen Verd{\"u}nnung aus, da aufgrund des gr{\"o}ßeren Interadsorbatabstands und der damit verbundenen Abnahme repulsiver Wechselwirkungen die Aktivierungsbarriere f{\"u}r ihre Desorption steigt. Die Stabilit{\"a}t der DNA-SWNT-Konjugate liegt demnach in ihrer kinetischen Inertheit begr{\"u}ndet, die sie vor einer Reaggregation bewahrt. Die Studie der in Siliziumcarbid induzierten Fehlstellendefekte kann als Beleg f{\"u}r die breite Anwendbarkeit des spektrofluorimetrischen Aufbaus gelten. PL-Mikroskopaufnahmen zeigen hierbei, dass die Anzahl der Defektzentren mit der Bestrahlungsintensit{\"a}t kontrolliert werden kann - von einer kontinuierlichen Verteilung bei hohen Strahlungsintensit{\"a}ten {\"u}ber heterogene Defektansammlungen bis hin zu Einzeldefektstellen bei niedrigen Strahlungsdosen. Letztere resultieren in beugungsbegrenzten Signaturen und erlauben damit eine Charakterisierung des abbildenden Systems sowie des Anregungsfokus. Anhand der PLE-Analyse l{\"a}sst sich das Absorptionsmaximum absch{\"a}tzen. Aussagen zur zeitlichen Entwicklung des Emissionsverhaltens werden durch TCSPC-Messungen erhalten. Die abschließende Untersuchung des Photonenflusses mit Hilfe von Korrelationsexperimenten nach Hanbury Brown-Twiss zeigt bei Raumtemperatur kein Auftreten von Photonantibunching.}, subject = {Fluoreszenzspektroskopie}, language = {de} }