In-situ nanoscopy of carrier dynamics and nanomorphology in metal halide perovskites

Institute of Electrical and Electronics Engineers (IEEE) 00 (2024) 1-2

Authors:

M Zizlsperger, S Nerreter, Q Yuan, KB Lohmann, F Sandner, F Schiegl, C Meineke, Y Gerasimenko, LM Herz, T Siday, MA Huber, MB Johnston, R Huber

Scalable Receivers Based on Horizontally-grown InAs Nanowires Promise All-fiber Terahertz Spectrometer Systems

Institute of Electrical and Electronics Engineers (IEEE) 00 (2024) 1-2

Authors:

Kun Peng, Nicholas Morgan, Ford Wagner, Thomas Siday, Chelsea Xia, Didem Dede, Victor Boureau, Valerio Piazza, Anna Fontcuberta I Morral, Michael Johnston

Semiconductor discovery with THz and millimeter-waves

Institute of Electrical and Electronics Engineers (IEEE) 00 (2024) 1-2

Direct and integrating sampling in terahertz receivers from wafer-scalable InAs nanowires

Nature Communications Springer Nature 15:1 (2024) 103

Authors:

Kun Peng, Nicholas Paul Morgan, Ford M Wagner, Thomas Siday, Chelsea Qiushi Xia, Didem Dede, Victor Boureau, Valerio Piazza, Anna Fontcuberta i Morral, Michael B Johnston

Abstract:

Terahertz (THz) radiation will play a pivotal role in wireless communications, sensing, spectroscopy and imaging technologies in the decades to come. THz emitters and receivers should thus be simplified in their design and miniaturized to become a commodity. In this work we demonstrate scalable photoconductive THz receivers based on horizontally-grown InAs nanowires (NWs) embedded in a bow-tie antenna that work at room temperature. The NWs provide a short photoconductivity lifetime while conserving high electron mobility. The large surface-to-volume ratio also ensures low dark current and thus low thermal noise, compared to narrow-bandgap bulk devices. By engineering the NW morphology, the NWs exhibit greatly different photoconductivity lifetimes, enabling the receivers to detect THz photons via both direct and integrating sampling modes. The broadband NW receivers are compatible with gating lasers across the entire range of telecom wavelengths (1.2–1.6 μm) and thus are ideal for inexpensive all-optical fibre-based THz time-domain spectroscopy and imaging systems. The devices are deterministically positioned by lithography and thus scalable to the wafer scale, opening the path for a new generation of commercial THz receivers.

Synergy of nanocrystalline carbon nitride with Cu single atom catalyst leads to selective photocatalytic reduction of CO2 to methanol

Sustainable Energy & Fuels Royal Society of Chemistry 8:8 (2024) 1691-1703

Authors:

Tara M LeMercier, Madasamy Thangamuthu, Emerson C Kohlrausch, Yifan Chen, Craig T Stoppiello, Michael W Fay, Graham A Rance, Gazi N Aliev, Wolfgang Theis, Johannes Biskupek, Ute Kaiser, Anabel E Lanterna, Jesum Alves Fernandes, Andrei N Khlobystov

Abstract:

Carbon nitride (C3N4) possesses both a band gap in the visible range and a low-lying conduction band potential, suitable for water splitting and CO2 reduction reactions (CO2RR). Yet, bulk C3N4 (b-C3N4) suffers from structural disorder leading to sluggish reaction kinetics. This can be improved by graphitisation; however, current processes in the literature, lead to a variety of graphitised C3N4 (g-C3N4), making it difficult to link the degrees of graphitisation with the functional properties. Herein, we employ complementary analyses, including electrochemical impedance, photoluminescence, and photocurrent, to elucidate structure–property–function relationships. Guided by the descriptors, we developed a facile two-step annealing method that yields nanocrystalline carbon nitride (nc-C3N4), comprising nanoscale graphitic domains within an amorphous matrix. The nanocrystalline grains of nc-C3N4 allow effective immobilisation of Cu atoms and stabilisation of low oxidation states (Cu(I)). Electron microscopy and energy-dispersive X-ray spectroscopy demonstrate that Cu is atomically dispersed. Importantly, the addition of only 0.11 wt% of copper to nc-C3N4 drastically decreases the charge recombination and resistance to change transfer. The synergy of the Cu single-atom catalyst and nanocrystalline domains in carbon nitride (Cu/nc-C3N4) leads to a remarkable 99% selectivity towards methanol production with a rate of 316 μmol gcat−1 h−1 during the photocatalytic CO2RR, which is absent in Cu/b-C3N4