[1] HIRSHBERG Y.Reversible Formation and Eradication of Colors by Irradiation at Low Temperatures.A Photochemical Memory Model[J].Journal of the American Chemical Society,1956,78(10):2304-2312.
[2] KAWATA S,KAWATA Y.Three-Dimensional Optical Data Storage Using Photochromic Materials[J].Chemical Reviews.2000,100(5):1777-1788.
[3] PENG X,DENG J,XU H.Substituent and solvent effects on the fluorescent and photochromic properties of 2-(2-pyridyl)imidazole containing diarylethene derivatives[J].RSC Advances,2013,3(46):24146-24153.
[4] BEATIRCE A, VINCENT G.Quantitative Model for Reversibly Photoswitchable Sensors[J].ACS Sensors. 2021, 6, 3, 1157-1165
[5] YOON B,LEE J,PARK I,et al.Recent functional material based approaches to prevent and detect counterfeiting[J].Journal of Materials Chemistry C,2013,1(13):2388-2403.
[6] YU M,WANG H; Li Y,et al.Photoswitchable diarylethene-based polyurethane film for photorewritable patterning and stable information storage. Journal of Applied Polymer Science ,2019, 136, (20).
[7] BARACHEVSKY V.Advances in photonics of organic photochromism.Journal of Photochemistry and Photobiology A: Chemistry,2018,61-69.
[8] GIORGIO P,MARTINO Q,LETIZIO C,et al.New Insight into the Fatigue Resistance of Photochromic 1,2-Diarylethenes.Journal of Physical Chemistry C 2017, 121, 42,23592-23598.
[9] ZHANG J.; ZOU Q.; TION H. Photochromic Materials: More than Meets the Eye.Advanced Materias. 2013, 25, 378– 399
[10] Tian H, Yang S,Recent progresses on diarylethene based photochromic switches. Chem. Soc. Rev. 2004, 33, 85.
[11] RAYMO F. Electron and energy transfer modulation with photochromic switches. Chem. Soc. Rev. 2005, 34, 327.
[12] Raymo F,TOMASULO M. Optical Processing with Photochromic Switches. Chem. Eur. J. 2006, 12, 3186.
[13] TIAN H, WANG S.Photochromic bisthienylethene as multi-function switches. Chem. Commun. 2007, 781.
[14] KAYANI, AMINUDDIN B; KURIAKOSE S;et al.UV Photochromism in Transition Metal Oxides and Hybrid Materials. Small. 2021, 17(32), 2100621.
[15] BAZZAN I,BOLLE P,OMS O,et al. Design of new photochromic polymers incorporating covalently or ionically linked spiropyran/polyoxometalate hybrids. Journal of Materials Chemistry C: Materials for Optical and Electronic Devices .2017, 5(25), 6343-6351.
[16] TROTTER D,SCHREURS J,TICK P. Copper-cadmium halide photochromic glasses: evidence for a colloidal darkening mechanism. Journal of Applied Physics.1982, 53(7), 4657-72.
[17] 宋玉民,杨美玲,马俊怀,等.姜黄素苯胺希夫碱稀土配合物的光致变色性能研究.光谱学与光谱分析. 2013, 33 (12).
[18] XIE X,MISTLBERGER G,BAKKER E. Reversible Photodynamic Chloride -Selective Sensor Based on Photochromic Spiropyran.J. Am. Chem. Soc. 2012, 134, 41, 16929-16932.
[19] PAQUETTE M,PATRICK B,FRANK N.Determining the Magnitude and Direction of Photoinduced Ligand Field Switching in Photochromic Metal-Organic Complexes: Molybdenum-Tetracarbonyl Spirooxazine Complexes. Journal of the American Chemical Society (2011), 133(26), 10081-10093.
[20] GUO C,ZHAI J,WANG Y,et al. Photoswitch-based Fluorescence Encoding of Microspheres in Limited Spectral Window for Multiplexed Detection. Anal. Chem. 2022, 94, 3, 1531-1536
[21] LOHSE M,NOWOSINSKI K,TRAUSEN N,et al.Gating the photochromism of an azobenzene by strong host-guest interactions in a divalent pseudo
[2] rotaxane. Chemical Communications.2015, 51(48), 9777-9780.
[22] UNO K,BOSSI M,IRIE M. Reversibly Photoswitchable Fluorescent Diarylethenes Resistant against Photobleaching in Aqueous Solutions. Journal of the American Chemical Society (2019), 141(41), 16471-16478.
[23] LACHMANN D, STUDTE C,MAENNEL B,et al. Photochromic Dopamine Receptor Ligands Based on Dithienylethenes and Fulgides. Chemistry-A European Journal .2017, 23, (54), 13423-13434.
[24] LUKYANOV B,LUKYANOVA S. synthesis, properties, and application.Chem. Heterocycl. Compd. 41 (3) (2005), pp. 281-311
[25] ALI A,KHARBASH R,YOOSIK K.Chemo- and biosensing applications of spiropyran and its derivatives. Analytica Chimica Acta.2020, 1110, 199-223.
[26] 翁城武,高功敏,朱鸿达,等.光响应螺吡喃类衍生物的研究进展[J].广州化工,2021, 49(04):1-14.
[27] WANG Y,XU Z, DAI X,et al. A new spiropyran-based sensor for colorimetric and fluorescent detection of divalent Cu(2+) and Hg(2+) ions and trivalent Ce(3+), Cr(3+) and Al(3+) ions.J Fluoresc.2019,29,569-575
[28] HELMY F,LEIBFARTH S,et al. Photoswitching using visible light: a new class of organic photochromic molecules. J. Am. Chem. Soc.2014,136,23,8169-8172
[29] LOKSHIN V,SAMAT A,METELITSA A.Spirooxazines: synthesis, structure, spectral and photochromic properties. Russ. Chem. Rev. 2002, 71, 893–916.
[30] SCHWARTZ H,WERKER M, TOBECK C,et al. Novel Photoactive Spirooxazine Based Switch@MOF Composite Materials. Chemphotochem,2020, 4, 195
[31] GILES W,FAUL C,TABOR R.Azobenzene isomerization in condensed matter: lessons for the design of efficient light-responsive soft-matter systems. Materials Advances.2021, 2, (13), 4152-4164.
[32] BANDARA H,BURDETTE S. Photoisomerization in different classes of azobenzene. Chem. Soc. Rev., 41 (2012), pp. 1809-1825
[33] ZHAO J; YAN X; WANG G; ZHANG Y; Gan Lihua. Investigation of UV-vis spectra of azobenzene containing carboxyl groups[J].Journal of molecular modeling .2021, 27(3), 79.
[34] OSCURATO S, SALVATORE M, MADDALENA P,et al. From nanoscopic to macroscopic photo-driven motion in azobenzene-containing materials. Nanophotonics, 2018,7,1387-1422
[35] NATANSOHN A,ROCHON P. Photoinduced motions in azo-containing polymers. Chem. Rev.2002,102,4139-4176.
[36] IRIE M,MOHRI M.Thermally irreversible photochromic systems. Reversible photocyclization of diarylethene derivatives J. Org. Chem., 1988, 53 , 803 —808.
[37] 郭妮,李苑莹,李亚珍,等.二芳基乙烯类化合物的光致关环及重排过程的理论研究.中国科学:化学.2019,49(10).
[38] ZHENG K, HAN S, ZENG X,et al.Rewritable Optical Memory Through HighRegistry Orthogonal Upconversion Adv. Mater.2018, 30, 1801726.
[39] ROUBINET B,WEBER M,SHOJAEI H,et al. Fluorescent Photoswitchable Diarylethenes for Biolabeling and Single-Molecule Localization Microscopies with Optical Superresolution J. Am. Chem. Soc.2017, 139 , 6611 —6620.
[40] ROKE D, STUCKHARDT C, DANOWSKI W,et al. Light-Gated Rotation in a Molecular Motor Functionalized with a Dithienylethene Switch Angew. Chem.Int. Ed., 2018, 57, 10515-10519.
[41] TYLER B,NEIL R.Photoregulation of Fluorescence in a Porphyrinic Dithienylethene Photochrome.J. Am. Chem. Soc. 2001, 123, 8, 1784–1785.
[42] ZMEEVA S,RYBALKIN,VLADIMIr P.;et al. Photochromism of novel
[1]benzothien-2-yl fulgides. Tetrahedron.2016, 72, 38, 5776-5782.
[43] RYBALKIN V. Synthesis and highly efficient light-induced rearrangements of diphenylmethylene (2-benzo[b] thienyl) fulgides and fulgimides[J]. Beilstein Journal of Organic Chemistry. 2020, 16, 1820-1829.
[44] RYBALKIN,VLADIMIR P.; PLUZHNIKOVA S,et al. A novel approach to fluorescent photochromic fulgides. Mendeleev Communications.2016, 26, 1, 21-23.
[45] RALPH S,MICHL J. Photochromism of Synthetic and Naturally Occurring 2H Chromenes and 2H-Pyrans. J. Am. Chem. Soc. 1966, 88, 24, 5931-5933.
[46] SALLENAVE X, DELBAERE S, VERMEERSCH G, et al. Photoswitch based on remarkably simple naphthopyrans[J]. Tetrahedron Lett, 2005, 46: 3257 -3259.
[47] AZEVEDO D, ORLANDO D.Synthesis and Photochromism of Novel Pyridyl Substituted Naphthopyrans[J].Journal of Organic Chemistry.2020,85 ,16,10772-10796.
[48] POIZAT O, ALOISE S, SLIWA M, et al. Transient absorption studies of the photochromic behavior of 3H-naphtho
[2,1-b]pyran linked to a pnitroaniline group[J]. New J Chem, 2009, 33: 1427-1432.
[49] ORLANDO D, PAUL I,et al. Synthesis and Photochromism of Novel Pyridyl Substituted Naphthopyrans. J. Org. Chem. 2020, 85, 16, 10772 -10796
[50] ZHAO Q,YANG Y,DUAN Y,et al.Synthesis and photochromic properties of new naphthopyrans.Chemistry of Heterocyclic Compounds volume.2018,54,840 -847.
[51] HAN J,YAN T,TU X,et al.Development of Photochromic Fused 2H-Naphthopyrans with Promising Thermal Fading Rates. J. Mater. Chem. C, 2022,10, 5542 -5549
[52] EVGENI M, ARTJOM B.et al. Synthesis and photochromic properties of crown containing styryl derivatives of naphthopyrans. J.Phys.Org. Chem. 2009, 22 (5), 537 -545.
[53] 霍志铭,李攻科,肖小华.有机光致变色材料在快速可视化检测中的应用.化学进展. 2017,29(Z2)
[54] LIU L,WANG A,WANG G,Li J. A naphthopyran-rhodamine based fluorescent and colorimetric chemosensor for recognition of common trivalent metal ions and Cu2+ ions. Sensors and Actuators B: Chemical. 215,2015,388-395.
[55] LI J, QI X, WEI W, et al. A red-emitting fluorescent and colorimetric dual-channel sensor for cyanide based on a hybrid naphthopyran-benzothiazol in aqueous solution.Sensors and Actuators B: Chemical. 232,2016,666-672.
[56] ZHANG W,LIU T,HUO F,et al. Reversible Ratiometric Fluorescent Probe for Sensing Bisulfate/H2O2 and Its Application in Zebrafish. Anal. Chem. 2017, 89, 15, 8079-8083.
[57] GABBUTT C, HERON B, INSTONE A, et al. Synthesis and photochromic properties of substituted 3H-naphtho
[2,1-b]pyrans[J]. Tetrahedron.2005; 61: 463-471.
[58] HAN S, CHEN Y. Modification of a photochromic 3-aryl-3-(-naphthalene)-3H naphtho
[2.1-b]pyran system with a fast fading speed in solution and in a rigid polymer matrix [J]. J.Mater. Chem., 2011, 21(13): 4961-4965.
修改评论