Numerical study of self-injected electron acceleration in CNT structured targets driven by an 800 nm laser

dc.contributor.authorBONTOIU, CRISTIAN
dc.contributor.authorBONATTO, ALEXANDRE
dc.contributor.authorAPSIMON, OZNUR
dc.contributor.authorBANDIERA, LAURA
dc.contributor.authorCAVOTO, GIANLUCA
dc.contributor.authorDREBOT, ILLYA
dc.contributor.authorGATTI, GIANCARLO
dc.contributor.authorGINER-NAVARRO, JORGE
dc.contributor.authorBIFENG, LEI
dc.contributor.authorMARTIN-LUNA, PABLO
dc.contributor.authorRAGO, ILLARIA
dc.contributor.authorPEREZ, JUAN RODRIGUEZ
dc.contributor.authorNUNES, BRUNO S.
dc.contributor.authorSYTOV, ALEXEI
dc.contributor.authorVALAGIANNOPOULOS, CONSTANTINOS
dc.contributor.authorWELSCH, CARSTEN P.
dc.contributor.authorXIA, GUOXING
dc.contributor.authorZHANG, JIAQI
dc.contributor.authorRESTA-LOPEZ, JAVIER
dc.coverageInternacional
dc.date.accessioned2026-03-13T12:15:58Z
dc.date.available2026-03-13T12:15:58Z
dc.date.issued2025
dc.description.abstractLaser wakefield acceleration (LWFA) may achieve TeV/m gradients using high-density solid-state plasmas as accelerating media. However, the application of bulk solid materials requires attosecond laser pulses, such as X-ray lasers, to drive wakefields at these high densities. Additionally, the short wakefield wavelengths associated with solid-state plasmas greatly limit the accelerating length. An alternative approach employs 2D carbon-based nanomaterials, like graphene or carbon nanotubes (CNTs), configured into structured targets. These nanostructures are designed with voids or low-density regions to effectively reduce the overall plasma density. This reduction enables the use of longer-wavelength lasers and also extends the plasma wavelength and the acceleration length. In this study, we present, to our knowledge, the first numerical demonstration of electron acceleration via self-injection into a wakefield bubble driven by an infrared laser pulse in structured CNT targets, similar to the behavior observed in gaseous plasmas for LWFA in the nonlinear (or bubble) regime. Using the PIConGPU code, bundles of CNTs are modeled in a 3D geometry as 25 nm-thick carbon tubes with an initial density of. The carbon plasma is ionized by a three-cycle, 800 nm wavelength laser pulse with a peak intensity of, achieving an effective plasma density of. The same laser also drives the wakefield bubble, responsible for electron self-injection and acceleration. Simulation results indicate that fs-long electron bunches with hundreds of pC charge can be self-injected and accelerated at gradients exceeding 1 TeV/m. Both charge and accelerating gradient figures are unprecedented when compared with LWFA in gaseous plasma.
dc.description.sponsorshipGeneralitat Valenciana (GVA)
dc.description.sponsorshipFundação de Amparo à Pesquisa do Estado do Rio Grande do Sul (FAPERGS)
dc.description.sponsorshipScience and Technology Facilities Council (STFC)
dc.description.sponsorshipIDGVA: CIDEGENT/2019/058
dc.description.sponsorshipIDFAPERGS: 24/2551-0001552-3
dc.description.sponsorshipIDSTFC: ST/P006752/1
dc.format.extent1-13
dc.identifier.citationBONTOIU, CRISTIAN; BONATTO, ALEXANDRE; APSIMON, OZNUR; BANDIERA, LAURA; CAVOTO, GIANLUCA; DREBOT, ILLYA; GATTI, GIANCARLO; GINER-NAVARRO, JORGE; BIFENG, LEI; MARTIN-LUNA, PABLO; RAGO, ILLARIA; PEREZ, JUAN RODRIGUEZ; NUNES, BRUNO S.; SYTOV, ALEXEI; VALAGIANNOPOULOS, CONSTANTINOS; WELSCH, CARSTEN P.; XIA, GUOXING; ZHANG, JIAQI; RESTA-LOPEZ, JAVIER. Numerical study of self-injected electron acceleration in CNT structured targets driven by an 800 nm laser. <b>Scientific Reports</b>, v. 15, n. 1, p. 1-13, 2025. DOI: <a href="https://dx.doi.org/10.1038/s41598-025-29386-4">10.1038/s41598-025-29386-4</a>. Disponível em: https://repositorio.ipen.br/handle/123456789/49430.
dc.identifier.doi10.1038/s41598-025-29386-4
dc.identifier.fasciculo1
dc.identifier.issn2045-2322
dc.identifier.percentilfi82.0
dc.identifier.percentilfiCiteScore89.00
dc.identifier.urihttps://repositorio.ipen.br/handle/123456789/49430
dc.identifier.vol15
dc.language.isoeng
dc.relation.ispartofScientific Reports
dc.rightsopenAccess
dc.titleNumerical study of self-injected electron acceleration in CNT structured targets driven by an 800 nm laser
dc.typeArtigo de periódico
dspace.entity.typePublication
ipen.autorBRUNO SILVEIRA NUNES
ipen.codigoautor16054
ipen.contributor.ipenauthorBRUNO SILVEIRA NUNES
ipen.identifier.fi3.9
ipen.identifier.fiCiteScore6.7
ipen.identifier.ipendoc31506
ipen.identifier.iwosWoS
ipen.range.fi3.000 - 4.499
ipen.range.percentilfi75.00 - 100.00
ipen.type.genreArtigo
relation.isAuthorOfPublication3f4345e4-b3ad-4a9b-b687-918b58729062
relation.isAuthorOfPublication.latestForDiscovery3f4345e4-b3ad-4a9b-b687-918b58729062
sigepi.autor.atividadeBRUNO SILVEIRA NUNES:16054:-1:N

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