journal article Sep 16, 2014

Cephalopod-inspired design of electro-mechano-chemically responsive elastomers for on-demand fluorescent patterning

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References
57
[1]
Filiatrault, H. L., Porteous, G. C., Carmichael, R. S., Davidson, G. J. & Carmichael, T. B. Stretchable light‐emitting electrochemical cells using an elastomeric emissive material. Adv. Mater. 24, 2673–2678 (2012). 10.1002/adma.201200448
[2]
Viventi, J. et al. A conformal, bio-interfaced class of silicon electronics for mapping cardiac electrophysiology. Sci. Transl. Med. 2, 24ra22–24ra22 (2010). 10.1126/scitranslmed.3000738
[3]
Park, S.-I. et al. Printed assemblies of inorganic light-emitting diodes for deformable and semitransparent displays. Science 325, 977–981 (2009). 10.1126/science.1175690
[4]
Kim, R.-H. et al. Waterproof AlInGaP optoelectronics on stretchable substrates with applications in biomedicine and robotics. Nat. Mater. 9, 929–937 (2010). 10.1038/nmat2879
[5]
Kim, R.-H. et al. Stretchable, transparent graphene interconnects for arrays of microscale inorganic light emitting diodes on rubber substrates. Nano Lett. 11, 3881–3886 (2011). 10.1021/nl202000u
[6]
Jeong, G. S. et al. Solderable and electroplatable flexible electronic circuit on a porous stretchable elastomer. Nat. Commun. 3, 977 (2012). 10.1038/ncomms1980
[7]
Sekitani, T. et al. Stretchable active-matrix organic light-emitting diode display using printable elastic conductors. Nat. Mater. 8, 494–499 (2009). 10.1038/nmat2459
[8]
Yu, Z., Niu, X., Liu, Z. & Pei, Q. Intrinsically stretchable polymer light-emitting devices using carbon nanotube-polymer composite electrodes. Adv. Mater. 23, 3989–3994 (2011). 10.1002/adma.201101986
[9]
Liang, J., Li, L., Niu, X., Yu, Z. & Pei, Q. Elastomeric polymer light-emitting devices and displays. Nat. Photon. 7, 817–824 (2013). 10.1038/nphoton.2013.242
[10]
Morin, S. A. et al. Camouflage and display for soft machines. Science 337, 828–832 (2012). 10.1126/science.1222149
[11]
White, M. S. et al. Ultrathin, highly flexible and stretchable PLEDs. Nat. Photon. 7, 811–816 (2013). 10.1038/nphoton.2013.188
[12]
Shepherd, R. F. et al. Multigait soft robot. Proc. Natl Acad. Sci. USA 108, 20400–20403 (2011). 10.1073/pnas.1116564108
[13]
Hagedon, M., Yang, S., Russell, A. & Heikenfeld, J. Bright e-Paper by transport of ink through a white electrofluidic imaging film. Nat. Commun. 3, 1173 (2012). 10.1038/ncomms2175
[14]
Heikenfeld, J. et al. Electrofluidic displays using Young–Laplace transposition of brilliant pigment dispersions. Nat. Photon. 3, 292–296 (2009). 10.1038/nphoton.2009.68
[15]
Yeo, J.-S. et al. 69.4: Novel flexible reflective color media integrated with transparent oxide TFT backplane. SID Symp. Digest Techn. Papers 41, 1041–1044 (2010). 10.1889/1.3499827
[16]
Mäthger, L. M., Denton, E. J., Marshall, N. J. & Hanlon, R. T. Mechanisms and behavioural functions of structural coloration in cephalopods. J. R. Soc. Interface 6, S149–S163 (2009). 10.1098/rsif.2008.0366.focus
[17]
Kreit, E. et al. Biological versus electronic adaptive coloration: how can one inform the other? J. R. Soc. Interface 10, 20120601 (2013). 10.1098/rsif.2012.0601
[18]
Hanlon, R. Cephalopod dynamic camouflage. Curr. Biol. 17, R400–R404 (2007). 10.1016/j.cub.2007.03.034
[19]
Deravi, L. F. et al. The structure–function relationships of a natural nanoscale photonic device in cuttlefish chromatophores. J. R. Soc. Interface 11, 20130942 (2014). 10.1098/rsif.2013.0942
[20]
Cloney, R. A. & Florey, E. Ultrastructure of cephalopod chromatophore organs. Cell Tissue Res. 89, 250–280 (1968).
[21]
Force-induced activation of covalent bonds in mechanoresponsive polymeric materials

Douglas A. Davis, Andrew Hamilton, Jinglei Yang et al.

Nature 2009 10.1038/nature07970
[22]
Caruso, M. M. et al. Mechanically-induced chemical changes in polymeric materials. Chem. Rev. 109, 5755–5798 (2009). 10.1021/cr9001353
[23]
Beyer, M. K. & Clausen-Schaumann, H. Mechanochemistry: the mechanical activation of covalent bonds. Chem. Rev. 105, 2921–2948 (2005). 10.1021/cr030697h
[24]
Black, A. L., Lenhardt, J. M. & Craig, S. L. From molecular mechanochemistry to stress-responsive materials. J. Mater. Chem. 21, 1655–1663 (2011). 10.1039/c0jm02636k
[25]
Hickenboth, C. R. et al. Biasing reaction pathways with mechanical force. Nature 446, 423–427 (2007). 10.1038/nature05681
[26]
Lee, C. K. et al. Exploiting force sensitive spiropyrans as molecular level probes. Macromolecules 46, 3746–3752 (2013). 10.1021/ma4005428
[27]
Black, A. L., Orlicki, J. A. & Craig, S. L. Mechanochemically triggered bond formation in solid-state polymers. J. Mater. Chem. 21, 8460–8465 (2011). 10.1039/c0jm03875j
[28]
Lenhardt, J. M. et al. Characterizing the mechanochemically active domains in gem-dihalocyclopropanated polybutadiene under compression and tension. J. Mater. Chem. 21, 8454–8459 (2011). 10.1039/c0jm04117c
[29]
O’Bryan, G., Wong, B. M. & McElhanon, J. R. Stress sensing in polycaprolactone films via an embedded photochromic compound. ACS Appl. Mater. Interfaces 2, 1594–1600 (2010). 10.1021/am100050v
[30]
Lee, C. K. et al. Force-induced redistribution of a chemical equilibrium. J. Am. Chem. Soc. 132, 16107–16111 (2010). 10.1021/ja106332g
[31]
Mechanical Activation of Mechanophore Enhanced by Strong Hydrogen Bonding Interactions

Yinjun Chen, Huan Zhang, Xiuli Fang et al.

ACS Macro Letters 2014 10.1021/mz400600r
[32]
Beiermann, B. A. et al. The effect of polymer chain alignment and relaxation on force-induced chemical reactions in an elastomer. Adv. Funct. Mater. 24, 1529–1537 (2014). 10.1002/adfm.201302341
[33]
Larsen, M. B. & Boydston, A. J. Successive mechanochemical activation and small molecule release in an elastomeric material. J. Am. Chem. Soc. 136, 1276–1279 (2014). 10.1021/ja411891x
[34]
Toughening Elastomers with Sacrificial Bonds and Watching Them Break

Etienne Ducrot, Yulan Chen, Markus Bulters et al.

Science 2014 10.1126/science.1248494
[35]
Gossweiler, G. R. et al. Mechanochemical activation of covalent bonds in polymers with full and repeatable macroscopic shape recovery. ACS Macro Lett. 3, 216–219 (2014). 10.1021/mz500031q
[36]
Wang, Q., Suo, Z. & Zhao, X. Bursting drops in solid dielectrics caused by high voltages. Nat. Commun. 3, 1157 (2012). 10.1038/ncomms2178
[37]
Wang, Q., Tahir, M., Zang, J. & Zhao, X. Dynamic electrostatic lithography: multiscale on-demand patterning on large-area curved surfaces. Adv. Mater. 24, 1947–1951 (2012). 10.1002/adma.201200272
[38]
Wang, Q., Zhang, L. & Zhao, X. Creasing to cratering instability in polymers under ultrahigh electric fields. Phys. Rev. Lett. 106, 118301 (2011). 10.1103/physrevlett.106.118301
[39]
A three-dimensional constitutive model for the large stretch behavior of rubber elastic materials

Ellen M. Arruda, Mary C. Boyce

Journal of the Mechanics and Physics of Solids 1993 10.1016/0022-5096(93)90013-6
[40]
Silberstein, M. N. et al. Modeling mechanophore activation within a viscous rubbery network. J. Mech. Phys. Solids 63, 141–153 (2014). 10.1016/j.jmps.2013.09.014
[41]
Chen, X. & Hutchinson, J. W. Herringbone buckling patterns of compressed thin films on compliant substrates. J. Appl. Mech. 71, 597–603 (2004). 10.1115/1.1756141
[42]
Wang, Q. & Zhao, X. Phase diagrams of instabilities in compressed film-substrate systems. J. Appl. Mech. 81, 051004 (2014). 10.1115/1.4025828
[43]
Breid, D. & Crosby, A. J. Effect of stress state on wrinkle morphology. Soft Matter 7, 4490–4496 (2011). 10.1039/c1sm05152k
[44]
Cai, S., Breid, D., Crosby, A. J., Suo, Z. & Hutchinson, J. W. Periodic patterns and energy states of buckled films on compliant substrates. J. Mech. Phys. Solids 59, 1094–1114 (2011). 10.1016/j.jmps.2011.02.001
[45]
Kim, P., Abkarian, M. & Stone, H. A. Hierarchical folding of elastic membranes under biaxial compressive stress. Nat. Mater. 10, 952–957 (2011). 10.1038/nmat3144
[46]
Moon, M.-W. et al. Wrinkled hard skins on polymers created by focused ion beam. Proc. Natl Acad. Sci. 104, 1130–1133 (2007). 10.1073/pnas.0610654104
[47]
Zhao, X. & Wang, Q. Harnessing large deformation and instabilities of soft dielectrics: Theory, experiment, and application. Appl. Phys. Rev. 1, 021304 (2014). 10.1063/1.4871696
[48]
Wang, Q. & Zhao, X. Creasing-wrinkling transition in elastomer films under electric fields. Phys. Rev. E 88, 042403 (2013). 10.1103/physreve.88.042403
[49]
Carpi, F., Bauer, S. & De Rossi, D. Stretching dielectric elastomer performance. Science 330, 1759–1761 (2010). 10.1126/science.1194773
[50]
Electroactive Polymer Actuators and Sensors

Yoseph Bar-Cohen, Qiming Zhang

MRS Bulletin 2008 10.1557/mrs2008.42

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Published
Sep 16, 2014
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Qiming Wang, Gregory R. Gossweiler, Xuanhe Zhao (2014). Cephalopod-inspired design of electro-mechano-chemically responsive elastomers for on-demand fluorescent patterning. Nature Communications, 5(1). https://doi.org/10.1038/ncomms5899
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