Amiri, M.A., Mahdavi, M., Mirzakuchaki, S., 2008. QCA Implementation of a MUX-Based FPGA CLB. Proc. Int. Conf. on Nanoscience and Nanotechnology, p.141–144. [doi:10.1109/ICONN.2008.4639266]
Amlani, I., Orlov, A.O., Toth, G., Bernstein, G.H., Lent, C.S., Snider, G.L., 1999. Digital logic gate using quantum-dot cellular automata. Science, 284(5412):289–291. [doi:10.1126/science.284.5412.289]
Amlani, I., Orlov, A.O., Kummamuru, R.K., Bernstein, G.H., Lent, C.S., Snider, G.L., 2000. Experimental demonstration of a leadless quantum-dot cellular automata cell. Appl. Phys. Lett., 77(5):738–740. [doi:10.1063/1.127103]
Askari, M., Taghizadeh, M., Fardad, K., 2008. Design and Analysis of a Sequential Ring Counter for QCA Implementation. Int. Conf. on Computer and Communication Engineering, p.933–936. [doi:10.1109/ICCCE.2008.4580743]
Blair, G.M., 1997. Low-power double-edge triggered flipflop. Electron. Lett., 33(10):845–847. [doi:10.1049/el:19970593]
Bonci, L., Gattobigio, M., Iannaccone, G., Macucci, M., 2002. Simulation of time evolution of clocked and nonclocked quantum cellular automaton circuits. J. Appl. Phys., 92(6): 3169–3178. [doi:10.1063/1.1501747]
Cho, H., Swartzlander, E.E., 2009. Adder and multiplier design in quantum-dot cellular automata. IEEE Trans. Comput., 58(6):721–727. [doi:10.1109/TC.2009.21]
Dehkordi, M.A., Shamsabadi, A.S., Ghahfarokhi, B.S., Vafaei, A., 2011. Novel RAM cell designs based on inherent capabilities of quantum-dot cellular automata. Microelectron. J., 42(5):701–708. [doi:10.1016/j.mejo.2011.02.006]
Devadoss, R., Paul, K., Balakrishnan, M., 2009. Coplanar QCA crossovers. Electron. Lett., 45(24):1234–1235. [doi:10.1049/el.2009.2819]
Gin, A., Williams, S., Meng, H., Tougaw, P.D., 1999. Hierarchical design of quantum-dot cellular automata devices. J. Appl. Phys., 85(7):3713–3720. [doi:10.1063/1.369737]
Hossain, R., Wronski, L.D., Albicki, A., 1994. Low power design using double edge triggered flip-flops. IEEE Trans. VLSI Syst., 2(2):261–265. [doi:10.1109/92.285754]
Huang, J., Momenzadeh, M., Lombardi, F., 2007. Design of sequential circuits by quantum-dot cellular automata. Microelectron. J., 38(4–5):525–537. [doi:10.1016/j.mejo.2007.03.013]
Kong, K., Shang, Y., Lu, R., 2010. Counter Designs in Quantum-Dot Cellular Automata. 10th IEEE Conf. on Nanotechnology, p.1130–1134. [doi:10.1109/NANO.2010.5698033]
Lent, C.S., Isaksen, E., 2003. Clocked molecular quantum-dot cellular automata. IEEE Trans. Electron Dev., 50(9): 1890–1895. [doi:10.1109/TED.2003.815857]
Lent, C.S., Tougaw, P.D., Porod, W., 1993. Bistable saturation in coupled quantum dots for quantum cellular automata. Appl. Phys. Lett., 62(7):714–716. [doi:10.1063/1.108848]
Lent, C.S., Tougaw, P.D., Porod, W., 1994. Quantum Cellular Automata: the Physics of Computing and Arrays of Quantum Dot Molecules. Proc. Workshop on Physics and Computation, p.5–13. [doi:10.1109/PHYCMP.1994.363705]
Mardiris, V.A., Karafyllidis, I.G., 2010. Design and simulation of modular 2n to 1 quantum-dot cellular automata (QCA) multiplexers. Int. J. Circ. Theory Appl., 38(8):771–785. [doi:10.1002/cta.595]
Nedovic, N., Oklobdzija, V.G., 2005. Dual-edge triggered storage elements and clocking strategy for low-power systems. IEEE Trans. VLSI Syst., 13(5):577–590. [doi:10.1109/TVLSI.2005.844302]
Orlov, A.O., Amlani, I., Bernstein, G.H., Lent, C.S., Snider, G.L., 1997. Realization of a functional cell for quantum-dot cellular automata. Science, 277(5328):928–930. [doi:10.1126/science.277.5328.928]
Ottavi, M., Pontarelli, S., DeBenedictis, E., Salsano, A., Frost-Murphy, S., Kogge, P., Lombardi, F., 2011. Partially reversible pipelined QCA circuits: combining low power with high throughput. IEEE Trans. Nanotechnol., 10(6): 1383–1393. [doi:10.1109/TNANO.2011.2147796]
Qiu, K., Xia, Y., 2007. Quantum-Dots Cellular Automata Comparator. 7th Int. Conf. on ASIC, p.1297–1300. [doi:10.1109/ICASIC.2007.4415874]
Shamsabadi, A.S., Ghahfarokhi, B.S., Zamanifar, K., Movahedinia, N., 2009. Applying inherent capabilities of quantum-dot cellular automata to design: D flip-flop case study. J. Syst. Archit., 55(3):180–187. [doi:10.1016/j.sysarc.2008.11.001]
Torabi, M., 2011. A New Architecture for T Flip Flop Using Quantum-Dot Cellular Automata. 3rd Asia Symp. on Quality Electronic Design, p.296–300. [doi:10.1109/ASQED.2011.6111764]
Vankamamidi, V., Ottavi, M., Lombardi, F., 2008. A serial memory by quantum-dot cellular automata (QCA). IEEE Trans. Comput., 57(5):606–618. [doi:10.1109/TC.2007.70831]
Venkataramani, P., Srivastava, S., Bhanja, S., 2008. Sequential Circuit Design in Quantum Dot Cellular Automata. 8th IEEE Conf. on Nanotechnology, p.534–537. [doi:10.1109/NANO.2008.159]
Walus, K., Dysart, T.J., Jullien, G.A., Budiman, A.R., 2004. QCADesigner: a rapid design and simulation tool for quantum-dot cellular automata. IEEE Trans. Nanotechnol., 3(1):26–31. [doi:10.1109/TNANO.2003.820815]
Wang, W., Walus, K., Jullien, G.A., 2003. Quantum-Dot Cellular Automata Adders. Proc. 3rd IEEE Conf. on Nanotechnology, p.461–464. [doi:10.1109/NANO.2003.1231818]
Wu, X., Wei, J., 1998. CMOS edge-triggered flip-flop using one latch. Electron. Lett., 34(16):1581–1582. [doi:10.1049/el:19981095]
Yang, X., Cai, L., Zhao, X., Zhang, N., 2010a. Design and simulation of sequential circuits in quantum-dot cellular automata: falling edge-triggered flip-flop and counter study. Microelectron. J., 41(1):56–63. [doi:10.1016/j.mejo.2009.12.008]
Yang, X., Cai, L., Zhao, X., 2010b. Low power dual-edge triggered flip-flop structure in quantum dot cellular automata. Electron. Lett., 46(12):825–826. [doi:10.1049/el.2010.1090]
Zeng, L., Wang, Q., Dai, Y., 2005. A new phenomenon of quantum-dot cellular automata. J. Zhejiang Univ.-Sci., 6A(10):1090–1094. [doi:10.1631/jzus.2005.A1090]
Zhao, P., McNeely, J., Golconda, P., Bayoumi, M.A., Barcenas, R.A., Kuang, W., 2007. Low-power clock branch sharing double-edge triggered flip-flop. IEEE Trans. VLSI Syst., 15(3):338–345. [doi:10.1109/TVLSI.2007.893623]