149 research outputs found
Spin chirality on a two-dimensional frustrated lattice
- Author
- A Chubukov
- AB Harris
- AP Ramirez
- AS Wills
- AS Wills
- BO Wells
- D Grohol
- Daniel G. Nocera
- Daniel Grohol
- DG Nocera
- H Kawamura
- I Ritchey
- J von Delft
- Jeffrey W. Lynn
- Jin-Hyung Cho
- JN Reimers
- JT Chalker
- K Ohgushi
- Kittiwit Matan
- M Elhajal
- M Nishiyama
- N Mermin
- P Calabrese
- S Sachdev
- Seung-Hun Lee
- SH Lee
- ST Bramwell
- T Inami
- T Moriya
- T Thio
- T Yildirim
- TE Mason
- VP Plakhty
- XG Wen
- Y Taguchi
- Young S. Lee
- Publication venue
- 'Springer Science and Business Media LLC'
- Publication date
- 05/04/2005
- Field of study
The collective behavior of interacting magnetic moments can be strongly
influenced by the topology of the underlying lattice. In geometrically
frustrated spin systems, interesting chiral correlations may develop that are
related to the spin arrangement on triangular plaquettes. We report a study of
the spin chirality on a two-dimensional geometrically frustrated lattice. Our
new chemical synthesis methods allow us to produce large single crystal samples
of KFe3(OH)6(SO4)2, an ideal Kagome lattice antiferromagnet. Combined
thermodynamic and neutron scattering measurements reveal that the phase
transition to the ordered ground-state is unusual. At low temperatures,
application of a magnetic field induces a transition between states with
different non-trivial spin-textures.Comment: 7 pages, 4 figure
Co3O4 Nanocrystals on Graphene as a Synergistic Catalyst for Oxygen Reduction Reaction
- Author
- AA Gewirth
- AJ Bard
- AJ Bard
- AJ Esswein
- C Nethravathi
- CWB Bezerra
- D Long
- DG Nocera
- F Bidault
- FA Cotton
- G Chen
- H Meng
- H Wang
- H Wang
- Hailiang Wang
- HL Wang
- Hongjie Dai
- JG Zhou
- JG Zhou
- Jian Wang
- Jigang Zhou
- JS Spendelow
- K Gong
- KJJ Mayrhofer
- L Qu
- L-S Zhang
- M De Koninck
- M Lefevre
- M Piana
- M Winter
- MW Kanan
- NS Lewis
- R Bashyam
- R Liu
- S Escribano
- S Trasatti
- TC Rojas
- Tom Regier
- TS Olson
- UA Paulus
- V Mehta
- W Jin
- Y Dong
- Y Gorlin
- Y Li
- Yanguang Li
- Yongye Liang
- YY Liang
- Publication venue
- 'Springer Science and Business Media LLC'
- Publication date
- 11/08/2011
- Field of study
Catalysts for oxygen reduction and evolution reactions are at the heart of
key renewable energy technologies including fuel cells and water splitting.
Despite tremendous efforts, developing oxygen electrode catalysts with high
activity at low costs remains a grand challenge. Here, we report a hybrid
material of Co3O4 nanocrystals grown on reduced graphene oxide (GO) as a
high-performance bi-functional catalyst for oxygen reduction reaction (ORR) and
oxygen evolution reaction (OER). While Co3O4 or graphene oxide alone has little
catalytic activity, their hybrid exhibits an unexpected, surprisingly high ORR
activity that is further enhanced by nitrogen-doping of graphene. The
Co3O4/N-doped graphene hybrid exhibits similar catalytic activity but superior
stability to Pt in alkaline solutions. The same hybrid is also highly active
for OER, making it a high performance non-precious metal based bi-catalyst for
both ORR and OER. The unusual catalytic activity arises from synergetic
chemical coupling effects between Co3O4 and graphene.Comment: published in Nature Material
Bifunctional non-noble metal oxide nanoparticle electrocatalysts through lithium-induced conversion for overall water splitting
- Author
- Publication venue
- 'Springer Science and Business Media LLC'
- Publication date
- 23/06/2015
- Field of study
Developing earth-abundant, active and stable electrocatalysts which operate in the same electrolyte for water splitting, including oxygen evolution reaction and hydrogen evolution reaction, is important for many renewable energy conversion processes. Here we demonstrate the improvement of catalytic activity when transition metal oxide (iron, cobalt, nickel oxides and their mixed oxides) nanoparticles (~20 nm) are electrochemically transformed into ultra-small diameter (2–5 nm) nanoparticles through lithium-induced conversion reactions. Different from most traditional chemical syntheses, this method maintains excellent electrical interconnection among nanoparticles and results in large surface areas and many catalytically active sites. We demonstrate that lithium-induced ultra-small NiFeOx nanoparticles are active bifunctional catalysts exhibiting high activity and stability for overall water splitting in base. We achieve 10 mA cm−2 water-splitting current at only 1.51 V for over 200 h without degradation in a two-electrode configuration and 1 M KOH, better than the combination of iridium and platinum as benchmark catalysts.open10
Carbon Dioxide Utilisation -The Formate Route
- Author
- A Alissandratos
- A Bar-Even
- A Bassegoda
- A Cornish-Bowden
- A Fihri
- A Hochheimer
- A Morozan
- A Rajapakshe
- AA Alekseeva
- AJ Clough
- AJ MartĂn
- AJ Morris
- AM Appel
- AP Lothrop
- AR Oliveira
- AS Agarwal
- AV Mesentsev
- B El-Zahab
- B Loges
- B Loges
- B Zhang
- BK Maiti
- BR Duffus
- C Coelho
- C Costa
- C Costentin
- C Federsel
- C Mourato
- C Pinske
- C Radon
- C Sebban
- C Vinals
- C Ziebart
- CA Huff
- CD Brondino
- CF Nielsen
- CM Cordas
- CM Silveira
- CS Mota
- CS Mota
- D Kopljar
- D Niks
- D Niks
- D Niks
- D Paul
- D Pletcher
- DE Edmondson
- DG Nocera
- DH Nam
- DK Nilov
- DT Whipple
- E Graf
- EE Benson
- EI Stiefel
- EI Stiefel
- EV Filippova
- F Gassner
- F Gloaguen
- F Zinoni
- FA Armstrong
- FA Bok
- FA Bok
- FM Schwarz
- FM Schwarz
- G Bruant
- G Dong
- G Plunkett
- GA Filonenko
- GA Filonenko
- GL Wilson
- GN George
- GN George
- H Abaibou
- H Choe
- H Hwang
- H Li
- H Raaijmakers
- H Raaijmakers
- H Takeda
- H Wang
- H Zhong
- HCA Raaijmakers
- HL Jiang
- HR Jhong
- I Tsujisho
- IA Berg
- IG Shabalin
- J Friedebold
- J Johannes
- J Pommier
- J Qiao
- J Schneider
- J Szczesny
- JC Boyington
- JF Heidelberg
- JF Hull
- JN Bandaria
- JPG Malthouse
- JR McKone
- JS Blanchard
- JS McDowall
- JS Mcdowall
- JS Olson
- JS Yoo
- JS-C Liou
- JT Bays
- K Bagramyan
- K Muller
- K Sakai
- K Sakai
- K Sakai
- K Sakai
- K Sakai
- K Schirwitz
- K Schuchmann
- K Schuchmann
- K Sordakis
- K Trchounian
- KP Sokol
- KP Sokol
- L Babujee
- L Barelli
- L Maia
- L Zhang
- LB Maia
- LB Maia
- LE Bevers
- LF Pan
- LM Walker
- M Boll
- M Ihara
- M Jormakka
- M Jormakka
- M Leopoldini
- M Martins
- M Martins
- M Miller
- M Rivas
- M Roger
- M Tiberti
- M Wang
- M Xia
- M Yadav
- M Yadav
- M Yuan
- MC Schoelmerich
- MD Doherty
- MF Kuehnel
- MJ Almendra
- MJ Axley
- MJ Axley
- MJ Barber
- MK Johnson
- ML Clark
- MP Coughlan
- MR DuBois
- MS Faber
- MS Jeletic
- N Kato
- N Kornienko
- NMFSA Cerqueira
- NS Rotberg
- P Arnoux
- P Arnoux
- P Du
- P Friedlingstein
- P Kottenhahn
- P Munshi
- P Preuster
- P Schrapers
- P Worm
- P Xiao
- PA Bertram
- PD Tran
- PG Jessop
- PG Jessop
- PG Jessop
- Q Guo
- R Castillo
- R Hille
- R Hille
- R Langer
- R Miyatani
- R Tanaka
- R Thome
- RC Bray
- RK Thauer
- RK Yadav
- S Bursakov
- S Das
- S Enthaler
- S Enthaler
- S Fukuzumi
- S Grimaldi
- S Gutteridg
- S Gutteridge
- S Gutteridge
- S Ikeyama
- S Kim
- S Kuwabata
- S Kuwabata
- S Losse
- S Moret
- S Navalon
- S Sahin
- S Schlager
- S Singh
- S Srikanth
- S Wesselbaum
- S-F Hsu
- SH Kim
- SK Kuk
- SM da Silva
- SM Silva
- SVV Khangulov
- SW Ragsdale
- SY Lee
- T Hartmann
- T Hartmann
- T Hartmann
- T Noji
- T Reda
- T Wagner
- T Young
- TJ Schmeier
- U Muller
- UJ Kilgore
- V Artero
- V Fourmond
- V Fourmond
- V Massey
- V MĂŒller
- VI Tishkov
- VI Tishkov
- VN Gladyshev
- VO Popov
- VS Lamzin
- VS Thoi
- W Cui
- W Leitner
- W Wang
- W Wang
- W-H Wang
- WE Robinson
- WF Chen
- WF Martin
- WT Eckenhoff
- X Lu
- X Yu
- X Yu
- X Yu
- X Zhou
- Y Amao
- Y Amao
- Y Himeda
- Y Izumi
- Y Maenaka
- Y Oh
- Y Tamaki
- YM Liu
- Publication venue
- Springer International Publishing
- Publication date
- 01/01/2021
- Field of study
UIDB/50006/2020 CEEC-Individual 2017 Program Contract.The relentless rise of atmospheric CO2 is causing large and unpredictable impacts on the Earth climate, due to the CO2 significant greenhouse effect, besides being responsible for the ocean acidification, with consequent huge impacts in our daily lives and in all forms of life. To stop spiral of destruction, we must actively reduce the CO2 emissions and develop new and more efficient âCO2 sinksâ. We should be focused on the opportunities provided by exploiting this novel and huge carbon feedstock to produce de novo fuels and added-value compounds. The conversion of CO2 into formate offers key advantages for carbon recycling, and formate dehydrogenase (FDH) enzymes are at the centre of intense research, due to the âgreenâ advantages the bioconversion can offer, namely substrate and product selectivity and specificity, in reactions run at ambient temperature and pressure and neutral pH. In this chapter, we describe the remarkable recent progress towards efficient and selective FDH-catalysed CO2 reduction to formate. We focus on the enzymes, discussing their structure and mechanism of action. Selected promising studies and successful proof of concepts of FDH-dependent CO2 reduction to formate and beyond are discussed, to highlight the power of FDHs and the challenges this CO2 bioconversion still faces.publishersversionpublishe
Cohort Profile: Post-Hospitalisation COVID-19 (PHOSP-COVID) study
- Author
- Abel K
- Adamali H
- Adeloye D
- Adeyemi O
- Adrego R
- Ahmad S
- Ahmed R
- Ahwireng N
- Ainsworth M
- Al-Sheklly B
- Alamoudi A
- Ali M
- Aljaroof M
- All AM
- Allan L
- Allen RJ
- Allerton L
- Allsop L
- Almeida P
- Altmann D
- Amoils S
- Anderson D
- Anifowose S
- Antoniades C
- Arbane G
- Arias A
- Armour C
- Armour C
- Armstrong L
- Armstrong N
- Armstrong N
- Arnold D
- Arnold H
- Ashish A
- Ashworth A
- Ashworth M
- Aslani S
- Assefa-Kebede H
- Atkin C
- Atkin P
- Atkins H
- Aul R
- Aul R
- Aul R
- Aung H
- Austin L
- Avram C
- Ayoub A
- Babores M
- Baggott R
- Bagshaw J
- Baguley D
- Bailey L
- Baillie JK
- Baillie JK
- Baillie JK
- Baillie JK
- Baillie JK
- Baillie JK
- Bain S
- Bakali M
- Bakau M
- Bakerly ND
- Bakerly ND
- Baldry E
- Baldwin D
- Baldwin M
- Baldwin M
- Ballard C
- Banerjee A
- Bang B
- Barker RE
- Barman L
- Barratt S
- Barrett F
- Barrett S
- Basire D
- Basu N
- Basu N
- Bates A
- Bates M
- Batterham R
- Baxendale H
- Baxendale H
- Baxendale H
- Baxter G
- Bayes H
- Beadsworth M
- Beadsworth M
- Beckett P
- Beggs M
- Beggs M
- Begum M
- Beirne P
- Beirne P
- Beirne P
- Bell D
- Bennett K
- Beranova E
- Bermperi A
- Berridge A
- Berry C
- Berry C
- Berry C
- Berry C
- Betts S
- Bevan E
- Bhui K
- Bingham M
- Birchall K
- Bishop L
- Bishop N
- Bisnauthsing K
- Blaikely J
- Blaikley J
- Bloomfield C
- Bloss A
- Bolger A
- Bolton CE
- Bolton CE
- Bolton CE
- Bolton CE
- Bonnington J
- Botkai A
- Bourne C
- Bourne M
- Bradley-Potts J
- Bramham K
- Brear L
- Breen G
- Breen G
- Breeze J
- Breeze K
- Briggs A
- Briggs A
- Briggs A
- Bright E
- Brightling CE
- Brightling CE
- Brightling CE
- Brightling CE
- Brightling CE
- Brightling CE
- Brightling CE
- Brightling CE
- Brightling CE
- Brill S
- Brindle K
- Broad L
- Broadley A
- Brookes C
- Broome M
- Brown A
- Brown A
- Brown CW
- Brown J
- Brown J
- Brown JS
- Brown JS
- Brown JS
- Brown M
- Brown M
- Brown M
- Brown V
- Brugha T
- Brunskill N
- Brunskill N
- Brunskill N
- Buch M
- Buch M
- Buckley P
- Bularga A
- Bullmore E
- Bunker J
- Burden L
- Burdett T
- Burn D
- Burns A
- Burns G
- Busby J
- Butcher R
- Butt A
- Buttress A
- Byrne S
- Cairns P
- Calder PC
- Callard F
- Calvelo E
- Carborn H
- Card B
- Carr C
- Carr L
- Carson G
- Carter P
- Casey A
- Cassar M
- Cassar MP
- Cavanagh J
- Cavanagh J
- Chablani M
- Chalder T
- Chalder T
- Chalder T
- Chalder T
- Chalmers JD
- Chalmers JD
- Chalmers JD
- Chalmers JD
- Chalmers JD
- Chambers RC
- Chambers RC
- Chan F
- Channon KM
- Chapman K
- Charalambou A
- Chaudhuri N
- Checkley A
- Chen J
- Cheng Y
- Chetham L
- Childs C
- Chilvers ER
- Chilvers ER
- Chinoy H
- Chiribiri A
- Chiribiri A
- Chiribiri A
- Chong-James K
- Choudhury G
- Choudhury G
- Choudhury N
- Chowdhury P
- Chowdhury P
- Chowienczyk P
- Chowienczyk P
- Christie C
- Chrystal M
- Clark C
- Clark D
- Clarke J
- Clohisey S
- Coakley G
- Coburn Z
- Coetzee S
- Cole J
- Coleman C
- Conneh F
- Connell D
- Connolly B
- Connor L
- Cook A
- Cooper B
- Cooper J
- Cooper S
- Copeland D
- Corral MA
- Cosier T
- Coulding M
- Coupland C
- Cox AN
- Cox E
- Cox E
- Craig T
- Crisp P
- Cristiano D
- Crooks MG
- Cross A
- Cruz I
- Cullinan P
- Cuthbertson DJ
- Cuthbertson DJ
- Daines L
- Daines L
- Dalton M
- Daly P
- Daniels A
- Dark P
- Dasgin J
- David A
- David C
- Davies E
- Davies F
- Davies G
- Davies GA
- Davies K
- Davies MJ
- Davies MJ
- Davies MJ
- Dawson C
- Dawson J
- Daynes E
- De Soyza A
- De Soyza A
- De Soyza A
- Deakin B
- Deans A
- Deas C
- Deery J
- Defres S
- Defres S
- Dell A
- Dempsey K
- Denneny E
- Dennis J
- Dewar A
- Dewar A
- Dharmagunawardena R
- Dib LO
- Dickens C
- Dipper A
- Diver S
- Diwanji SN
- Dixon M
- Djukanovic R
- Djukanovic R
- Dobson H
- Dobson SL
- Docherty AB
- Docherty AB
- Docherty AB
- Docherty AB
- Donaldson A
- Dong T
- Dormand N
- Dougherty A
- Dowling R
- Drain S
- Draxlbauer K
- Drury K
- Dulawan P
- Dunleavy A
- Dunn S
- Dupont C
- Earley J
- Easom N
- Easom N
- Echevarria C
- Echevarria C
- Echevarria C
- Edwards S
- Edwardson C
- Edwardson C
- El-Taweel H
- Elliott A
- Elliott B
- Elliott K
- Ellis Y
- Ellis Y
- Elmer A
- Elneima O
- Elneima O
- Elneima O
- Elneima O
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- Evans J
- Evans R
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- Evans RI
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- Fabbri L
- Fairbairn S
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- Faluyi D
- Favager C
- Fayzan T
- Featherstone J
- Felton T
- Ferreira VM
- Finch J
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- Fisher H
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- Flockton R
- Flynn M
- Foot H
- Foote D
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- Forton D
- Forton D
- Fraile E
- Francis C
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- Francis S
- Francis S
- Francis S
- Frankel A
- Fraser E
- Free R
- French N
- French N
- Fu X
- Fuld J
- Fuld J
- Furniss J
- Gardiner L
- Garner L
- Gautam N
- Geddes JR
- Geddes JR
- Geddes JR
- George J
- George J
- George PM
- Gibbons M
- Gill M
- Gill R
- Gilmour L
- Gleeson F
- Gleeson F
- Gleeson F
- Glossop J
- Glover S
- Goodman N
- Goodwin C
- Gooptu B
- Gooptu B
- Gootpu B
- Gordon H
- Gorsuch T
- Greatorex M
- Greenhaff P
- Greenhaff P
- Greenhalf W
- Greenhalf W
- Greenhalf W
- Greenhalf W
- Greenhalgh A
- Greening NJ
- Greening NJ
- Greening NJ
- Greening NJ
- Greenwood J
- Greenwood JP
- Greenwood S
- Greenwood S
- Gregory H
- Gregory R
- Grieve D
- Griffin D
- Griffiths L
- Guerdette A-M
- Guio BG
- Gummadi M
- Gupta A
- Gurram S
- Guthrie E
- Guy Z
- Hadley K
- Haggar A
- Haider NA
- Hainey K
- Hairsine B
- Haldar P
- Hall I
- Hall L
- Halling-Brown M
- Halling-Brown M
- Halling-Brown M
- Hamil R
- Hancock A
- Hancock K
- Hanley KP
- Hanley KP
- Hanley NA
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- Haq S
- Hardwick HE
- Hardwick HE
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- Hardy E
- Hardy T
- Hargadon B
- Hargadon B
- Harrington K
- Harris E
- Harris VC
- Harris VC
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- Harrison EM
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- Hart N
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- Harvey A
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- Harvie M
- Haslam L
- Hastie C
- Havinden-Williams M
- Hawkes J
- Hawkings N
- Haworth J
- Hayday A
- Haynes M
- Hazeldine J
- Hazelton T
- Heaney LG
- Heaney LG
- Heaney LG
- Heeley C
- Heeney JL
- Heightman M
- Heller S
- Heller S
- Henderson M
- Henson H
- Hesselden L
- Hewitt M
- Highett V
- Hillman T
- Hiwot T
- Ho L-P
- Ho LP
- Ho LP
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- Hoare A
- Hoare M
- Hockridge J
- Hogarth P
- Holbourn A
- Holden S
- Holdsworth L
- Holgate D
- Holland M
- Holloway L
- Holmes K
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- Holroyd-Hind B
- Holt L
- Hormis A
- Horsley A
- Horsley A
- Horsley A
- Hosseini A
- Hotopf M
- Hotopf M
- Houchen-Wolloff L
- Houchen-Wolloff L
- HOuchen-Wolloff L
- Houchen-Wolloff L
- Houchen-Wolloff L
- Howard K
- Howard L
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- Howell A
- Hufton E
- Hughes AD
- Hughes J
- Hughes R
- Humphries A
- Huneke N
- Hurditch E
- Hurst J
- Hurst JR
- Hurst JR
- Hurst JR
- Husain M
- Husain M
- Hussell T
- Hussell T
- Hutchinson J
- Ibrahim W
- Ilyas F
- Ingham J
- Ingram L
- Ionita D
- Isaacs K
- Ismail K
- Jackson T
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- Jacob J
- Jacob J
- Jacob J
- Jacob J
- James WY
- Janes S
- Jang W
- Jarman C
- Jarrold I
- Jarvis H
- Jastrub R
- Jayaraman B
- Jenkins G
- Jenkins RG
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- Jezzard P
- Jezzard P
- Jimenez LAA
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- Johnson C
- Johnson S
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- Jolley C
- Jolley CJ
- Jones D
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- Jones MG
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- Kabir T
- Kaltsakas G
- Kamwa V
- Kanellakis N
- Kaprowska S
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- Keenan N
- Kelly S
- Kemp GJ
- Kemp GJ
- Kerr S
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- Kerslake H
- Key AL
- Khan F
- Khunti K
- Khunti K
- Khunti K
- Kilroy S
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- Kirk J
- Kitterick P
- Klenerman P
- Knibbs L
- Knight S
- Knighton A
- Kon O
- Kon S
- Kon SS
- Koprowska S
- Korszun A
- Koychev I
- Koychev I
- Koychev I
- Kurasz C
- Kurupati P
- Kwan J
- Laing C
- Lamlum H
- Landers G
- Langenberg C
- Langenberg C
- Lavelle-Langham L
- Lavelle-Langham L
- Lawrie A
- Lawrie A
- Lawrie A
- Lawson C
- Lawson C
- Layton A
- Lea A
- Leavy OC
- Leavy OC
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- Lee D
- Lee E
- Lee J-H
- Leitch K
- Lenagh R
- Lewis D
- Lewis J
- Lewis K
- Lewis KE
- Lewis KE
- Lewis V
- Lewis-Burke N
- Li X
- Light T
- Lightstone L
- Lim L
- Linford S
- Lingford-Hughes A
- Lipman M
- Liyanage K
- Lloyd A
- Logan S
- Lomas D
- Lomas D
- Lone NI
- Lone NI
- Lone NI
- Lone NI
- Loosley R
- Lord JM
- Lord JM
- Lord JM
- Lord JM
- Lota H
- Lovegrove W
- Lucey A
- Lukaschuk E
- Lukaschuk E
- Lye A
- Lynch C
- MacDonald S
- MacGowan G
- Macharia I
- Mackie J
- Macliver L
- Madathil S
- Madzamba G
- Magee N
- Magtoto MM
- Mairs N
- Majeed N
- Major E
- Malein F
- Malim M
- Mallison G
- Man WD-C
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- Manisty C
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- Mansoori P
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- Marciniak S
- Marino P
- Mariveles M
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- Martin J
- Martineau A
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- Maskell N
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- Matila D
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- Matthews L
- Mbuyisa A
- McAdoo S
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- McArdle A
- McArdle P
- McAulay D
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- Zheng B
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- Publication venue
- Oxford University Press (OUP)
- Publication date
- 18/12/2023
- Field of study
Multi-messenger observations of a binary neutron star merger
- Author
- Aab A
- Aartsen MG
- Abbott BP
- Abbott R
- Abbott TD
- Abbott TMC
- Abdalla H
- Abe F
- Abeysekara AU
- Abramo LR
- Abramowski A
- Abreu P
- Acernese F
- Acero F
- Ackermann M
- Ackley K
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- Alighieri S Di Serego
- Allam S
- Allekotte I
- Allen B
- Allen G
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- Altin PA
- Altmann D
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- Angus CR
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- Antonelli LA
- Antonelli LA
- Anupama GC
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- Aoki W
- Appert S
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- Arai K
- Arakawa M
- Aramo C
- Araya MC
- Arcavi I
- Arceo R
- Ardid M
- Areeda JS
- Aresu G
- Argan A
- Argelles C
- Arnaud N
- Array LWA Long Wavelength
- Array MWA Murchison Widefield
- Arrieta M
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- Schroder FG
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- Publication venue
- 'American Astronomical Society'
- Publication date
- 01/01/2017
- Field of study
On 2017 August 17 a binary neutron star coalescence candidate (later designated GW170817) with merger time 12:41:04 UTC was observed through gravitational waves by the Advanced LIGO and Advanced Virgo detectors. The Fermi Gamma-ray Burst Monitor independently detected a gamma-ray burst (GRB 170817A) with a time delay of ~1.7 s with respect to the merger time. From the gravitational-wave signal, the source was initially localized to a sky region of 31 deg2 at a luminosity distance of 40+8-8 Mpc and with component masses consistent with neutron stars. The component masses were later measured to be in the range 0.86 to 2.26 Mo. An extensive observing campaign was launched across the electromagnetic spectrum leading to the discovery of a bright optical transient (SSS17a, now with the IAU identification of AT 2017gfo) in NGC 4993 (at ~40 Mpc) less than 11 hours after the merger by the One- Meter, Two Hemisphere (1M2H) team using the 1 m Swope Telescope. The optical transient was independently detected by multiple teams within an hour. Subsequent observations targeted the object and its environment. Early ultraviolet observations revealed a blue transient that faded within 48 hours. Optical and infrared observations showed a redward evolution over ~10 days. Following early non-detections, X-ray and radio emission were discovered at the transientâs position ~9 and ~16 days, respectively, after the merger. Both the X-ray and radio emission likely arise from a physical process that is distinct from the one that generates the UV/optical/near-infrared emission. No ultra-high-energy gamma-rays and no neutrino candidates consistent with the source were found in follow-up searches. These observations support the hypothesis that GW170817 was produced by the merger of two neutron stars in NGC4993 followed by a short gamma-ray burst (GRB 170817A) and a kilonova/macronova powered by the radioactive decay of r-process nuclei synthesized in the ejecta
GWTC-2.1: Deep extended catalog of compact binary coalescences observed by LIGO and Virgo during the first half of the third observing run
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- Zweizig J
- Publication venue
- 'American Physical Society (APS)'
- Publication date
- 15/01/2024
- Field of study
The second Gravitational-Wave Transient Catalog, GWTC-2, reported on 39 compact binary coalescences observed by the Advanced LIGO and Advanced Virgo detectors between 1 April 2019 15 ⶠ00 UTC and 1 October 2019 15 ⶠ00 UTC. Here, we present GWTC-2.1, which reports on a deeper list of candidate events observed over the same period. We analyze the final version of the strain data over this period with improved calibration and better subtraction of excess noise, which has been publicly released. We employ three matched-filter search pipelines for candidate identification, and estimate the probability of astrophysical origin for each candidate event. While GWTC-2 used a false alarm rate threshold of 2 per year, we include in GWTC-2.1, 1201 candidates that pass a false alarm rate threshold of 2 per day. We calculate the source properties of a subset of 44 high-significance candidates that have a probability of astrophysical origin greater than 0.5. Of these candidates, 36 have been reported in GWTC-2. We also calculate updated source properties for all binary black hole events previously reported in GWTC-1. If the eight additional high-significance candidates presented here are astrophysical, the mass range of events that are unambiguously identified as binary black holes (both objects â„ 3 Mâ ) is increased compared to GWTC-2, with total masses from ⌠14 M â for GW190924_021846 to ⌠182 Mâ for GW190426_190642. Source properties calculated using our default prior suggest that the primary components of two new candidate events (GW190403_051519 and GW190426_190642) fall in the mass gap predicted by pair-instability supernova theory. We also expand the population of binaries with significantly asymmetric mass ratios reported in GWTC-2 by an additional two events (the mass ratio is less than 0.65 and 0.44 at 90% probability for GW190403_051519 and GW190917_114630 respectively), and find that two of the eight new events have effective inspiral spins Ïeff > 0 (at 90% credibility), while no binary is consistent with Ïeff < 0 at the same significance. We provide updated estimates for rates of binary black hole and binary neutron star coalescence in the local Universe
Determinants of recovery from post-COVID-19 dyspnoea: analysis of UK prospective cohorts of hospitalised COVID-19 patients and community-based controls
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- Publication venue
- 'Elsevier BV'
- Publication date
- 27/03/2023
- Field of study
Background The risk factors for recovery from COVID-19 dyspnoea are poorly understood. We investigated determinants of recovery from dyspnoea in adults with COVID-19 and compared these to determinants of recovery from non-COVID-19 dyspnoea. Methods We used data from two prospective cohort studies: PHOSP-COVID (patients hospitalised between March 2020 and April 2021 with COVID-19) and COVIDENCE UK (community cohort studied over the same time period). PHOSP-COVID data were collected during hospitalisation and at 5-month and 1-year follow-up visits. COVIDENCE UK data were obtained through baseline and monthly online questionnaires. Dyspnoea was measured in both cohorts with the Medical Research Council Dyspnoea Scale. We used multivariable logistic regression to identify determinants associated with a reduction in dyspnoea between 5-month and 1-year follow-up. Findings We included 990 PHOSP-COVID and 3309 COVIDENCE UK participants. We observed higher odds of improvement between 5-month and 1-year follow-up among PHOSP-COVID participants who were younger (odds ratio 1.02 per year, 95% CI 1.01â1.03), male (1.54, 1.16â2.04), neither obese nor severely obese (1.82, 1.06â3.13 and 4.19, 2.14â8.19, respectively), had no pre-existing anxiety or depression (1.56, 1.09â2.22) or cardiovascular disease (1.33, 1.00â1.79), and shorter hospital admission (1.01 per day, 1.00â1.02). Similar associations were found in those recovering from non-COVID-19 dyspnoea, excluding age (and length of hospital admission). Interpretation Factors associated with dyspnoea recovery at 1-year post-discharge among patients hospitalised with COVID-19 were similar to those among community controls without COVID-19. Funding PHOSP-COVID is supported by a grant from the MRC-UK Research and Innovation and the Department of Health and Social Care through the National Institute for Health Research (NIHR) rapid response panel to tackle COVID-19. The views expressed in the publication are those of the author(s) and not necessarily those of the National Health Service (NHS), the NIHR or the Department of Health and Social Care. COVIDENCE UK is supported by the UK Research and Innovation, the National Institute for Health Research, and Barts Charity. The views expressed are those of the authors and not necessarily those of the funders
Search for gravitational waves from Scorpius X-1 in the second Advanced LIGO observing run with an improved hidden Markov model
- Author
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- Zimmerman Ab
- Zucker Me
- Zweizig J
- Publication venue
- College Park, MD : American Physical Society
- Publication date
- 01/01/2019
- Field of study
We present results from a semicoherent search for continuous gravitational waves from the low-mass x-ray binary Scorpius X-1, using a hidden Markov model (HMM) to track spin wandering. This search improves on previous HMM-based searches of LIGO data by using an improved frequency domain matched filter, the J-statistic, and by analyzing data from Advanced LIGO's second observing run. In the frequency range searched, from 60 to 650 Hz, we find no evidence of gravitational radiation. At 194.6 Hz, the most sensitive search frequency, we report an upper limit on gravitational wave strain (at 95% confidence) of h095%=3.47Ă10-25 when marginalizing over source inclination angle. This is the most sensitive search for Scorpius X-1, to date, that is specifically designed to be robust in the presence of spin wandering. © 2019 American Physical Society
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