Tunable self-recoverable near-infrared mechanoluminescence from platelike strontium-aluminate: SrAl12O19:Cr3+

Qi’an Zhang , Ziyi Fang , Mingzhi Wu , Yang Liu , Qidong Ma , Jiazhen Zhou , Shengqiang Liu , Dengfeng Peng

Microstructures ›› 2026, Vol. 6 ›› Issue (4) : 2026080

PDF
Microstructures ›› 2026, Vol. 6 ›› Issue (4) :2026080 DOI: 10.20517/microstructures.2026.20
Research Article
Tunable self-recoverable near-infrared mechanoluminescence from platelike strontium-aluminate: SrAl12O19:Cr3+
Author information +
History +
PDF

Abstract

The development of high-performance self-recoverable near-infrared (NIR) mechanoluminescent materials is crucial for advancing applications. In this work, we presented a self-recoverable NIR mechanoluminescent material, platelike SrAl12O19, through singly doped with Cr3+ and co-doped with lanthanide ions (Nd3+, Yb3+, Er3+) in one step. By modulating the Cr3+ doping concentration, we achieved precise control over the mechanoluminescence (ML) intensity as well as the spectral tunability between characteristic R-line emission (~ 690 nm) and the broadband emission (750-950 nm). Moreover, energy transfer from Cr3+ to lanthanide ions enables multispectral ML emission extending into the NIR-II window (1,000-1,700 nm). The resultant material exhibits excellent ML self-recoverability and high chemical stability. The co-doped system was demonstrated with great potential in dynamic stress visualization, naked-eye-invisible information encryption and special identification under challenging conditions (e.g., underwater). We further demonstrated practical applications by fabricating dual-mode flexible NIR mechanoluminescent paper sheets and sprayable coatings. This work contributes to the advancement of new NIR mechanoluminescent materials with unique morphological features for various scenarios, including the advancement of intelligent sensing and multi-level anti-counterfeiting technologies.

Keywords

Mechanoluminescence / near-infrared / self-recoverable / platelike SrAl12O19 / sensing and anti-counterfeiting

Cite this article

Download citation ▾
Qi’an Zhang, Ziyi Fang, Mingzhi Wu, Yang Liu, Qidong Ma, Jiazhen Zhou, Shengqiang Liu, Dengfeng Peng. Tunable self-recoverable near-infrared mechanoluminescence from platelike strontium-aluminate: SrAl12O19:Cr3+. Microstructures, 2026, 6 (4) : 2026080 DOI:10.20517/microstructures.2026.20

登录浏览全文

4963

注册一个新账户 忘记密码

References

[1]

Chang S.,Zhang K.,Peng D.,Deng Y.,Shan C.,Dong L.. Mechanoluminescent functional devices: developments, applications and prospects Nano Energy 2024 122 109325

[2]

Schramm S.,Weiß D.. Bioluminescence - the vibrant glow of nature and its chemical mechanisms Chembiochem 2024 25 e202400106

[3]

Wang J.,Yao K.,Cui K..et al. Contact electrification induced multicolor self-recoverable mechanoluminescent elastomer for wearable smart light-emitting Devices Adv. Opt. Mater. 2023 11 2203112

[4]

Zhou B.,Liu J.,Huang X..et al. Mechanoluminescent-triboelectric bimodal sensors for self-powered sensing and intelligent control Nano-Micro Lett. 2023 15 72 PMC10039194

[5]

Shin H. G.,Timilsina S.,Sohn K. S.,Kim J. S.. Digital image correlation compatible mechanoluminescent skin for structural health monitoring Adv. Sci. 2022 9 2105889

[6]

Dong Y.,An W.,Wang Z.,Zhang D.. An artificial intelligence-assisted flexible and wearable mechanoluminescent strain sensor system Nano-Micro Lett. 2024 17 62 PMC11564496

[7]

Duan S.,Sang M.,Chen H..et al. Shear stiffening-based mechanoluminescent device for impact-thermal coupling protection and impact visualization Adv. Funct. Mater. 2024 34 2411821

[8]

Jiang S.,Wu X.,Yang F.,Rommelfanger N. J.,Hong G.. Activation of mechanoluminescent nanotransducers by focused ultrasound enables light delivery to deep-seated tissue in vivo Nat. Protoc. 2023 18 3787 820

[9]

Wu S.,Zhou G.,Wu Y..et al. Multiple defect-induced high-resolution near-infrared mechanoluminescent materials for non-destructive detection of blood glucose and lipids Adv. Mater. 2024 36 2408508

[10]

Li L.,Wondraczek L.,Li L..et al. CaZnOS:Nd3+ emits tissue-penetrating near-infrared light upon force loading ACS Appl. Mater. Interfaces 2018 10 14509 16 PMC6299452

[11]

Xiong P.,Peng M.. Near infrared mechanoluminescence from the Nd3+ doped perovskite LiNbO3:Nd3+ for stress sensors J. Mater. Chem. C. 2019 7 6301 7

[12]

Xiong P.,Peng M.,Qin K.,Xu F.,Xu X.. Visible to near-infrared persistent luminescence and mechanoluminescence from Pr3+‐doped LiGa5O8 for energy storage and bioimaging Adv. Opt. Mater. 2019 7 1901107

[13]

Chen C.,Zhuang Y.,Tu D.,Wang X.,Pan C.,Xie R.. Creating visible-to-near-infrared mechanoluminescence in mixed-anion compounds SrZn2S2O and SrZnSO Nano Energy 2020 68 104329

[14]

Liu Z.,Yu X.,Peng Q..et al. NIR mechanoluminescence from Cr3+ activated Y3Al5O12 with intense zero phonon line Adv. Funct. Mater. 2023 33 2214497

[15]

Tian B.,Zhao L.,Wang Y..et al. Interfacial charge flow modulation of CaF2/CaAl12O19:Dy heterojunctions for enhanced mechanoluminescence in flexible composites Adv. Mater. 2025 38 e15048

[16]

Zhang Y.,Yu Y.,Zhao Q.. A three-mode optical thermometer based on Cr3+ doped CaAl12O19 phosphors Ceram. Int. 2025 51 7321 9

[17]

Suo H.,Wang Y.,Zhang X..et al. A broadband near-infrared nanoemitter powered by mechanical action Matter 2023 6 2935 49

[18]

Liu S.,Guo Y.,Song Z.,Peng D.,Liu Q.,Wang F.. Bright chromium-sensitized lanthanide NIR‐II mechanoluminescence in a piezoelectric oxide Adv. Mater. 2025 37 e06957

[19]

Shao P.,Xiong P.,Xiao Y.,Chen Z.,Chen D.,Yang Z.. Self-recoverable NIR mechanoluminescence from Cr3+ doped perovskite type aluminate Adv. Powder Mater. 2024 3 100165

[20]

Wu S.,Xiao B.,Xiao Y.,Shao P.,Wang Y.,Xiong P.. Cr3+-activated broadband near-infrared mechanoluminescence in garnet compound Nano Energy 2023 116 108811

[21]

Li C.,Schramma N.,Wang Z..et al. Ultrasensitive and robust mechanoluminescent living composites Sci. Adv. 2023 9 eadi8643 PMC10588950

[22]

Pei L.,Yu Y.,Ma Z.,Wang X.,Mao Q.,Zhong J.. Molten salt synthesis of single-crystalline Sr2MgSi2O7: Eu2+, Dy3+ nanoplates: breaking the afterglow-size trade-off Inorg. Chem. 2025 64 9084 92

[23]

Hu M.,Yang W.,Tan H..et al. Template-free synthesis of mesoporous and crystalline transition metal oxide nanoplates with abundant surface defects Matter 2020 2 1244 59

[24]

Scarabelli L.,Sun M.,Zhuo X..et al. Plate-like colloidal metal nanoparticles Chem. Rev. 2023 123 3493 542 PMC10103137

[25]

Tu D.,Xu C.,Fujio Y.. Intense red emitting mechanoluminescence from CaZnOS:Mn,Li with c-axis preferred orientation J. Adv. Dielect. 2014 04 1450017

[26]

Vishista K.,Gnanam F.. Microstructural development of SrAl12O19 in alumina-strontia composites J. Eur. Ceram. Soc. 2009 29 77 83

[27]

Shannon R. D.. Revised effective ionic radii and systematic studies of interatomic distances in halides and chalcogenides Acta Cryst. A. 1976 32 751 67

[28]

Lin X.,Zhang R.,Tian X..et al. Coordination geometry-dependent multi-band emission and atypically deep-trap-dominated NIR persistent luminescence from chromium‐doped aluminates Adv. Opt. Mater. 2018 6 1701161

[29]

Groppi G.,Cristiani C.,Forzatti P.. Preparation, characterisation and catalytic activity of pure and substituted La-hexaaluminate systems for high temperature catalytic combustion Appl. Catal. B-Environ. 2001 35 137 48

[30]

Machida M.,Eguchi K.,Arai H.. Catalytic properties of BaMAl11O19-α (M = Cr, Mn, Fe, Co, and Ni) for high-temperature catalytic combustion J. Catal. 1989 120 377 86

[31]

Tam T. T. H.,Quang N. V.,Tu N..et al. Promising deep‐red emitting Cr3+‐doped SrAl12O19 phosphors for plant growth LEDs Luminescence 2024 39 e4851

[32]

Adachi S.. Review - photoluminescence properties of Cr3+-activated oxide phosphors ECS J. Solid State Sci. Technol. 2021 10 026001

[33]

Meng X.,Wang Z.,Huo X..et al. Mechanoluminescence and photoluminescence properties of high efficiency near-infrared phosphor and its multifunctional application Mater. Today Chem. 2025 48 102893

[34]

Verdun H.,Wortman D.,Morrison C.,Bradshaw J.. Optical properties of Nd3+ in single crystal SrAl12O19 Opt. Mater. 1997 7 117 28

[35]

Yan W.,Chen Y.,Yin M.. Quenching mechanism of Er3+ emissions in Er3+ - and Er3+/Yb3+-doped SrAl12O19 nanophosphors J. Rare Earths 2011 29 202 6

[36]

Dexter D. L.. A Theory of sensitized luminescence in solids J. Chem. Phys. 1953 21 836 50

[37]

Carnall W. T.,Fields P. R.,Rajnak K.. Electronic energy levels in the trivalent lanthanide aquo ions. I. Pr3+, Nd3+, Pm3+, Sm3+, Dy3+, Ho3+, Er3+, and Tm3+ J. Chem. Phys. 1968 49 4424 42

[38]

Van Pieterson L.,Heeroma M.,De Heer E.,Meijerink A.. Charge transfer luminescence of Yb3+ J. Lumin. 2000 91 177 93

[39]

Deng Y.,Peng D.,Shen C. L..et al. Energy transfer-assisted color conversion of persistent mechanoluminescence in RhB@SiO2/SrAl2O4:Eu,Dy system for multilevel information encryption Laser & Photonics Rev. 2024 18 2400251

[40]

Wang C.,Liu D.,Wei G..et al. Enabling multimodal luminescence in a single nanoparticle for X-ray imaging encryption and anticounterfeiting Nano Lett. 2024 24 9691 9

[41]

Wu J.,Zhou X.,Luo J..et al. Stretchable and self-powered mechanoluminescent triboelectric nanogenerator fibers toward wearable amphibious electro-optical sensor textiles Adv. Sci. 2024 11 2401109

[42]

Zhang X.,Li Z.,Du W..et al. Self-powered triboelectric-mechanoluminescent electronic skin for detecting and differentiating multiple mechanical stimuli Nano Energy 2022 96 107115

PDF

0

Accesses

0

Citation

Detail

Sections
Recommended

/