The smallest and most abundant aromatic species in the Universe, H3+, has some truly crucial functions. It also has a really high first electronic excitation energy; 19.3 eV. Check out why this is the case in our latest paper in @chemicalscience.rsc.org pubs.rsc.org/en/content/a...
There are not many people in the world I can think of in my worst nightmares that would be as colossally awful for their country as Donald Trump has proven to be for his, if you made the huge mistake of giving them power. But this guy is definitely one of them. #Farage #Reform
with lectures by Irene Casademont, @ironcevic.bsky.social, Bo Durbeej, Debashree Ghosh, Mercedes Alonso Giner,
Victor Gray, Juwon Oh, Josene Toldo, Igor Alabugin and myself.
The slides at the Winter School of icesaa-4.in are now available to download; in total 388 slides on intro (anti)aromaticity & descriptors, intro photochemistry, ultrafast spectroscopy, computations of excited states, excited state PES features, organic photochem & pitfalls ...🧵
Please remember to block September 22 - 25, 2027, in your calendar for ICESAA-5 to be held in Osaka, Japan, by Prof. Shohei Saito & team. More info to be posted in the next few months, yet be prepared, it will also be a really stimulating conference!!!
At long last—a GREAT effort by Megan & Nolan finally out in JACS after a 2+ year gestation. We found quadruply hydrogen-bonded DADA azaphosphinine homodimers are preferred over the theoretically more stable DDAA dimers, and they possess STRONG homodimerization constants.
pubs.acs.org/doi/full/10....
🔈 We've extended the deadline for nominations for the 2026 Chemical Science Lectureship to 13 March. So keep sending those nominations to us!
See rsc.li/chemsci-lectureship26 for details about eligibility and how to nominate.
#CompChem #MLChem #AIChem #MachineLearning
Henrik Ottosson
Brent Toderian
Henrik Ottosson
Henrik Ottosson
Henrik Ottosson
We did some pretty twisted stuff and Science liked it: www.science.org/doi/10.1126/...
Michael Haley – UOregon Chemistry
Chemical Science
Igor Roncevic
The trihydrogen cation, H3+, is unique in the Universe. It serves as the primary proton reservoir, driving essential astrochemical reactions, and it functions as a thermostat for giant gas planets. H3...
Stereoisomers of C13Cl2 exhibiting helical orbitals around a ring of carbon atoms were synthesized by atom manipulation on NaCl surfaces. We resolved the enantiomeric geometries of the singlet states ...
Inclusion of a fused pyridine ring onto the core motif of an azaphosphinine heterocycle, as well as functionalization with an N-acetamide group, furnishes a chiral, quadruple hydrogen bonding face that is capable of strong homodimerization. Eleven different azaphosphinine derivatives were prepared with variable electron donor and acceptor functionalization. Contrary to simple DA azaphosphinine dimers, trends from substituent effects showed that the hydrogen bond acceptors (A) were more sensitive to the substituents than the hydrogen bond donors (D). With electron donating groups appended onto the azaphosphinine scaffold, dimerization constants rose to as high as 209 M–1 in 10% DMSO-d6 in water-saturated CDCl3. X-ray crystallographic data unexpectedly showed that the quadruply hydrogen bonding system preferred the theoretically less stable donor–acceptor–donor–acceptor (DADA) H-bond orientation despite having the capability to tautomerize to the potentially more stable DDAA structure. Computational analysis revealed that maintaining pyridine aromaticity was more stabilizing than the secondary interactions that would be created from a DDAA dimer. Additionally, these molecules associate as the first examples of R,R- and S,S-azaphosphinine homodimers, compared to the R,S-heterodimers typically found for simple azaphosphinines. This observation was explained by computational analysis, which found a geometric difference between the nitrogen atoms adjacent to the phosphorus chiral center of the Homo and Hetero dimer, leading to a stronger hydrogen bonding interaction in the Homo dimer. Further understanding of this quadruply hydrogen bonding core will allow us to explore further applications that integrate this strongly hydrogen bonding system into larger and more complex supramolecular frameworks such as supramolecular polymers or capsules.