modelInfos[MODEL_TYPE::VBIC].modelParams.emplace_back("type",305,SIM_MODEL::PARAM::DIR_OUT,SIM_VALUE::TYPE_STRING,"",SIM_MODEL::PARAM::CATEGORY::SUPERFLUOUS,"npn","pnp","NPN or PNP");
modelInfos[MODEL_TYPE::VBIC].modelParams.emplace_back("npn",101,SIM_MODEL::PARAM::DIR_INOUT,SIM_VALUE::TYPE_BOOL,"",SIM_MODEL::PARAM::CATEGORY::SUPERFLUOUS,"NaN","NaN","NPN type device");
modelInfos[MODEL_TYPE::VBIC].modelParams.emplace_back("pnp",102,SIM_MODEL::PARAM::DIR_INOUT,SIM_VALUE::TYPE_BOOL,"",SIM_MODEL::PARAM::CATEGORY::SUPERFLUOUS,"NaN","NaN","PNP type device");
modelInfos[MODEL_TYPE::VBIC].modelParams.emplace_back("hrcf",108,SIM_MODEL::PARAM::DIR_INOUT,SIM_VALUE::TYPE_FLOAT,"A",SIM_MODEL::PARAM::CATEGORY::DC,"1","1","High current RC factor");
modelInfos[MODEL_TYPE::VBIC].modelParams.emplace_back("rbx",109,SIM_MODEL::PARAM::DIR_INOUT,SIM_VALUE::TYPE_FLOAT,"Ω",SIM_MODEL::PARAM::CATEGORY::DC,"0","0","Extrinsic base resistance");
modelInfos[MODEL_TYPE::VBIC].modelParams.emplace_back("rbi",110,SIM_MODEL::PARAM::DIR_INOUT,SIM_VALUE::TYPE_FLOAT,"Ω",SIM_MODEL::PARAM::CATEGORY::DC,"0.1","0.1","Intrinsic base resistance");
modelInfos[MODEL_TYPE::VBIC].modelParams.emplace_back("rbp",113,SIM_MODEL::PARAM::DIR_INOUT,SIM_VALUE::TYPE_FLOAT,"Ω",SIM_MODEL::PARAM::CATEGORY::DC,"0.1","0.1","Parasitic base resistance");
modelInfos[MODEL_TYPE::VBIC].modelParams.emplace_back("pe",120,SIM_MODEL::PARAM::DIR_INOUT,SIM_VALUE::TYPE_FLOAT,"V",SIM_MODEL::PARAM::CATEGORY::DC,"0.75","0.75","B-E built in potential");
modelInfos[MODEL_TYPE::VBIC].modelParams.emplace_back("cjep",126,SIM_MODEL::PARAM::DIR_INOUT,SIM_VALUE::TYPE_FLOAT,"F",SIM_MODEL::PARAM::CATEGORY::CAPACITANCE,"0","0","B-C extrinsic zero bias capacitance");
modelInfos[MODEL_TYPE::VBIC].modelParams.emplace_back("pc",127,SIM_MODEL::PARAM::DIR_INOUT,SIM_VALUE::TYPE_FLOAT,"V",SIM_MODEL::PARAM::CATEGORY::DC,"0.75","0.75","B-C built in potential");
modelInfos[MODEL_TYPE::VBIC].modelParams.emplace_back("ps",131,SIM_MODEL::PARAM::DIR_INOUT,SIM_VALUE::TYPE_FLOAT,"V",SIM_MODEL::PARAM::CATEGORY::DC,"0.75","0.75","S-C junction built in potential");
modelInfos[MODEL_TYPE::VBIC].modelParams.emplace_back("wbe",135,SIM_MODEL::PARAM::DIR_INOUT,SIM_VALUE::TYPE_FLOAT,"",SIM_MODEL::PARAM::CATEGORY::DC,"1","1","Portion of IBEI from Vbei, 1-WBE from Vbex");
modelInfos[MODEL_TYPE::VBIC].modelParams.emplace_back("isp",145,SIM_MODEL::PARAM::DIR_INOUT,SIM_VALUE::TYPE_FLOAT,"A",SIM_MODEL::PARAM::CATEGORY::DC,"0","0","Parasitic transport saturation current");
modelInfos[MODEL_TYPE::VBIC].modelParams.emplace_back("wsp",146,SIM_MODEL::PARAM::DIR_INOUT,SIM_VALUE::TYPE_FLOAT,"",SIM_MODEL::PARAM::CATEGORY::DC,"1","1","Portion of ICCP");
modelInfos[MODEL_TYPE::VBIC].modelParams.emplace_back("vef",154,SIM_MODEL::PARAM::DIR_INOUT,SIM_VALUE::TYPE_FLOAT,"V",SIM_MODEL::PARAM::CATEGORY::DC,"0","0","Forward Early voltage");
modelInfos[MODEL_TYPE::VBIC].modelParams.emplace_back("ver",155,SIM_MODEL::PARAM::DIR_INOUT,SIM_VALUE::TYPE_FLOAT,"V",SIM_MODEL::PARAM::CATEGORY::DC,"0","0","Reverse Early voltage");
modelInfos[MODEL_TYPE::VBIC].modelParams.emplace_back("qtf",160,SIM_MODEL::PARAM::DIR_INOUT,SIM_VALUE::TYPE_FLOAT,"m",SIM_MODEL::PARAM::CATEGORY::DC,"0","0","Variation of TF with base-width modulation");
modelInfos[MODEL_TYPE::VBIC].modelParams.emplace_back("xtf",161,SIM_MODEL::PARAM::DIR_INOUT,SIM_VALUE::TYPE_FLOAT,"",SIM_MODEL::PARAM::CATEGORY::DC,"0","0","Coefficient for bias dependence of TF");
modelInfos[MODEL_TYPE::VBIC].modelParams.emplace_back("vtf",162,SIM_MODEL::PARAM::DIR_INOUT,SIM_VALUE::TYPE_FLOAT,"V",SIM_MODEL::PARAM::CATEGORY::DC,"0","0","Voltage giving VBC dependence of TF");
modelInfos[MODEL_TYPE::VBIC].modelParams.emplace_back("itf",163,SIM_MODEL::PARAM::DIR_INOUT,SIM_VALUE::TYPE_FLOAT,"A",SIM_MODEL::PARAM::CATEGORY::DC,"0","0","High current dependence of TF");
modelInfos[MODEL_TYPE::VBIC].modelParams.emplace_back("xre",169,SIM_MODEL::PARAM::DIR_INOUT,SIM_VALUE::TYPE_FLOAT,"",SIM_MODEL::PARAM::CATEGORY::TEMPERATURE,"0","0","Temperature exponent of RE");
modelInfos[MODEL_TYPE::VBIC].modelParams.emplace_back("xrb",170,SIM_MODEL::PARAM::DIR_INOUT,SIM_VALUE::TYPE_FLOAT,"",SIM_MODEL::PARAM::CATEGORY::TEMPERATURE,"0","0","Temperature exponent of RB");
modelInfos[MODEL_TYPE::VBIC].modelParams.emplace_back("xrbi",171,SIM_MODEL::PARAM::DIR_INOUT,SIM_VALUE::TYPE_FLOAT,"",SIM_MODEL::PARAM::CATEGORY::TEMPERATURE,"0","0","Temperature exponent of RBI");
modelInfos[MODEL_TYPE::VBIC].modelParams.emplace_back("xrc",172,SIM_MODEL::PARAM::DIR_INOUT,SIM_VALUE::TYPE_FLOAT,"",SIM_MODEL::PARAM::CATEGORY::TEMPERATURE,"0","0","Temperature exponent of RC");
modelInfos[MODEL_TYPE::VBIC].modelParams.emplace_back("xrci",173,SIM_MODEL::PARAM::DIR_INOUT,SIM_VALUE::TYPE_FLOAT,"",SIM_MODEL::PARAM::CATEGORY::TEMPERATURE,"0","0","Temperature exponent of RCI");
modelInfos[MODEL_TYPE::VBIC].modelParams.emplace_back("xrs",174,SIM_MODEL::PARAM::DIR_INOUT,SIM_VALUE::TYPE_FLOAT,"",SIM_MODEL::PARAM::CATEGORY::TEMPERATURE,"0","0","Temperature exponent of RS");
modelInfos[MODEL_TYPE::VBIC].modelParams.emplace_back("xvo",175,SIM_MODEL::PARAM::DIR_INOUT,SIM_VALUE::TYPE_FLOAT,"",SIM_MODEL::PARAM::CATEGORY::TEMPERATURE,"0","0","Temperature exponent of VO");
modelInfos[MODEL_TYPE::VBIC].modelParams.emplace_back("ea",176,SIM_MODEL::PARAM::DIR_INOUT,SIM_VALUE::TYPE_FLOAT,"eV",SIM_MODEL::PARAM::CATEGORY::DC,"1.12","1.12","Activation energy for IS");
modelInfos[MODEL_TYPE::VBIC].modelParams.emplace_back("eaie",177,SIM_MODEL::PARAM::DIR_INOUT,SIM_VALUE::TYPE_FLOAT,"eV",SIM_MODEL::PARAM::CATEGORY::DC,"1.12","1.12","Activation energy for IBEI");
modelInfos[MODEL_TYPE::VBIC].modelParams.emplace_back("eaic",178,SIM_MODEL::PARAM::DIR_INOUT,SIM_VALUE::TYPE_FLOAT,"eV",SIM_MODEL::PARAM::CATEGORY::DC,"1.12","1.12","Activation energy for IBCI/IBEIP");
modelInfos[MODEL_TYPE::VBIC].modelParams.emplace_back("eais",179,SIM_MODEL::PARAM::DIR_INOUT,SIM_VALUE::TYPE_FLOAT,"eV",SIM_MODEL::PARAM::CATEGORY::DC,"1.12","1.12","Activation energy for IBCIP");
modelInfos[MODEL_TYPE::VBIC].modelParams.emplace_back("eane",180,SIM_MODEL::PARAM::DIR_INOUT,SIM_VALUE::TYPE_FLOAT,"eV",SIM_MODEL::PARAM::CATEGORY::DC,"1.12","1.12","Activation energy for IBEN");
modelInfos[MODEL_TYPE::VBIC].modelParams.emplace_back("eanc",181,SIM_MODEL::PARAM::DIR_INOUT,SIM_VALUE::TYPE_FLOAT,"eV",SIM_MODEL::PARAM::CATEGORY::DC,"1.12","1.12","Activation energy for IBCN/IBENP");
modelInfos[MODEL_TYPE::VBIC].modelParams.emplace_back("eans",182,SIM_MODEL::PARAM::DIR_INOUT,SIM_VALUE::TYPE_FLOAT,"eV",SIM_MODEL::PARAM::CATEGORY::DC,"1.12","1.12","Activation energy for IBCNP");
modelInfos[MODEL_TYPE::VBIC].modelParams.emplace_back("xis",183,SIM_MODEL::PARAM::DIR_INOUT,SIM_VALUE::TYPE_FLOAT,"",SIM_MODEL::PARAM::CATEGORY::TEMPERATURE,"3","3","Temperature exponent of IS");
modelInfos[MODEL_TYPE::VBIC].modelParams.emplace_back("xii",184,SIM_MODEL::PARAM::DIR_INOUT,SIM_VALUE::TYPE_FLOAT,"",SIM_MODEL::PARAM::CATEGORY::TEMPERATURE,"3","3","Temperature exponent of IBEI,IBCI,IBEIP,IBCIP");
modelInfos[MODEL_TYPE::VBIC].modelParams.emplace_back("xin",185,SIM_MODEL::PARAM::DIR_INOUT,SIM_VALUE::TYPE_FLOAT,"",SIM_MODEL::PARAM::CATEGORY::TEMPERATURE,"3","3","Temperature exponent of IBEN,IBCN,IBENP,IBCNP");
modelInfos[MODEL_TYPE::VBIC].modelParams.emplace_back("tnf",186,SIM_MODEL::PARAM::DIR_INOUT,SIM_VALUE::TYPE_FLOAT,"",SIM_MODEL::PARAM::CATEGORY::TEMPERATURE,"0","0","Temperature exponent of NF");
modelInfos[MODEL_TYPE::VBIC].modelParams.emplace_back("tavc",187,SIM_MODEL::PARAM::DIR_INOUT,SIM_VALUE::TYPE_FLOAT,"",SIM_MODEL::PARAM::CATEGORY::TEMPERATURE,"0","0","Temperature exponent of AVC2");
modelInfos[MODEL_TYPE::VBIC].modelParams.emplace_back("vrt",190,SIM_MODEL::PARAM::DIR_INOUT,SIM_VALUE::TYPE_FLOAT,"V",SIM_MODEL::PARAM::CATEGORY::DC,"0","0","Punch-through voltage of internal B-C junction");
modelInfos[MODEL_TYPE::VBIC].modelParams.emplace_back("art",191,SIM_MODEL::PARAM::DIR_INOUT,SIM_VALUE::TYPE_FLOAT,"",SIM_MODEL::PARAM::CATEGORY::DC,"0.1","0.1","Smoothing parameter for reach-through");
modelInfos[MODEL_TYPE::VBIC].modelParams.emplace_back("nkf",194,SIM_MODEL::PARAM::DIR_INOUT,SIM_VALUE::TYPE_FLOAT,"A",SIM_MODEL::PARAM::CATEGORY::DC,"0.5","0.5","High current beta rolloff");
modelInfos[MODEL_TYPE::VBIC].modelParams.emplace_back("xikf",195,SIM_MODEL::PARAM::DIR_INOUT,SIM_VALUE::TYPE_FLOAT,"",SIM_MODEL::PARAM::CATEGORY::TEMPERATURE,"0","0","Temperature exponent of IKF");
modelInfos[MODEL_TYPE::VBIC].modelParams.emplace_back("xrcx",196,SIM_MODEL::PARAM::DIR_INOUT,SIM_VALUE::TYPE_FLOAT,"",SIM_MODEL::PARAM::CATEGORY::TEMPERATURE,"0","0","Temperature exponent of RCX");
modelInfos[MODEL_TYPE::VBIC].modelParams.emplace_back("xrbx",197,SIM_MODEL::PARAM::DIR_INOUT,SIM_VALUE::TYPE_FLOAT,"",SIM_MODEL::PARAM::CATEGORY::TEMPERATURE,"0","0","Temperature exponent of RBX");
modelInfos[MODEL_TYPE::VBIC].modelParams.emplace_back("xrbp",198,SIM_MODEL::PARAM::DIR_INOUT,SIM_VALUE::TYPE_FLOAT,"",SIM_MODEL::PARAM::CATEGORY::TEMPERATURE,"0","0","Temperature exponent of RBP");
modelInfos[MODEL_TYPE::VBIC].modelParams.emplace_back("isrr",199,SIM_MODEL::PARAM::DIR_INOUT,SIM_VALUE::TYPE_FLOAT,"",SIM_MODEL::PARAM::CATEGORY::DC,"1","1","Separate IS for fwd and rev");
modelInfos[MODEL_TYPE::VBIC].modelParams.emplace_back("xisr",200,SIM_MODEL::PARAM::DIR_INOUT,SIM_VALUE::TYPE_FLOAT,"",SIM_MODEL::PARAM::CATEGORY::TEMPERATURE,"0","0","Temperature exponent of ISR");
modelInfos[MODEL_TYPE::VBIC].modelParams.emplace_back("dear",201,SIM_MODEL::PARAM::DIR_INOUT,SIM_VALUE::TYPE_FLOAT,"eV",SIM_MODEL::PARAM::CATEGORY::DC,"0","0","Delta activation energy for ISRR");
modelInfos[MODEL_TYPE::VBIC].modelParams.emplace_back("eap",202,SIM_MODEL::PARAM::DIR_INOUT,SIM_VALUE::TYPE_FLOAT,"eV",SIM_MODEL::PARAM::CATEGORY::DC,"1.12","1.12","Exitivation energy for ISP");
modelInfos[MODEL_TYPE::VBIC].modelParams.emplace_back("tvbbe1",206,SIM_MODEL::PARAM::DIR_INOUT,SIM_VALUE::TYPE_FLOAT,"°C",SIM_MODEL::PARAM::CATEGORY::TEMPERATURE,"0","0","Linear temperature coefficient of VBBE");
modelInfos[MODEL_TYPE::VBIC].modelParams.emplace_back("tvbbe2",207,SIM_MODEL::PARAM::DIR_INOUT,SIM_VALUE::TYPE_FLOAT,"°C",SIM_MODEL::PARAM::CATEGORY::TEMPERATURE,"0","0","Quadratic temperature coefficient of VBBE");
modelInfos[MODEL_TYPE::VBIC].modelParams.emplace_back("tnbbe",208,SIM_MODEL::PARAM::DIR_INOUT,SIM_VALUE::TYPE_FLOAT,"°C",SIM_MODEL::PARAM::CATEGORY::TEMPERATURE,"0","0","Temperature coefficient of NBBE");
modelInfos[MODEL_TYPE::VBIC].modelParams.emplace_back("dtemp_",210,SIM_MODEL::PARAM::DIR_INOUT,SIM_VALUE::TYPE_FLOAT,"°C",SIM_MODEL::PARAM::CATEGORY::TEMPERATURE,"0","0","Locale Temperature difference");
modelInfos[MODEL_TYPE::VBIC].modelParams.emplace_back("vbe_max",213,SIM_MODEL::PARAM::DIR_INOUT,SIM_VALUE::TYPE_FLOAT,"V",SIM_MODEL::PARAM::CATEGORY::LIMITING_VALUES,"1e+99","1e+99","maximum voltage B-E junction");
modelInfos[MODEL_TYPE::VBIC].modelParams.emplace_back("vbc_max",214,SIM_MODEL::PARAM::DIR_INOUT,SIM_VALUE::TYPE_FLOAT,"V",SIM_MODEL::PARAM::CATEGORY::LIMITING_VALUES,"1e+99","1e+99","maximum voltage B-C junction");
modelInfos[MODEL_TYPE::VBIC].modelParams.emplace_back("vce_max",215,SIM_MODEL::PARAM::DIR_INOUT,SIM_VALUE::TYPE_FLOAT,"V",SIM_MODEL::PARAM::CATEGORY::LIMITING_VALUES,"1e+99","1e+99","maximum voltage C-E branch");
modelInfos[MODEL_TYPE::VBIC].instanceParams.emplace_back("collnode",222,SIM_MODEL::PARAM::DIR_OUT,SIM_VALUE::TYPE_INT,"",SIM_MODEL::PARAM::CATEGORY::SUPERFLUOUS,"","","Number of collector node",true);
modelInfos[MODEL_TYPE::VBIC].instanceParams.emplace_back("basenode",223,SIM_MODEL::PARAM::DIR_OUT,SIM_VALUE::TYPE_INT,"",SIM_MODEL::PARAM::CATEGORY::SUPERFLUOUS,"","","Number of base node",true);
modelInfos[MODEL_TYPE::VBIC].instanceParams.emplace_back("emitnode",224,SIM_MODEL::PARAM::DIR_OUT,SIM_VALUE::TYPE_INT,"",SIM_MODEL::PARAM::CATEGORY::SUPERFLUOUS,"","","Number of emitter node",true);
modelInfos[MODEL_TYPE::VBIC].instanceParams.emplace_back("subsnode",225,SIM_MODEL::PARAM::DIR_OUT,SIM_VALUE::TYPE_INT,"",SIM_MODEL::PARAM::CATEGORY::SUPERFLUOUS,"","","Number of substrate node",true);
modelInfos[MODEL_TYPE::VBIC].instanceParams.emplace_back("basebxnode",228,SIM_MODEL::PARAM::DIR_OUT,SIM_VALUE::TYPE_INT,"",SIM_MODEL::PARAM::CATEGORY::SUPERFLUOUS,"","","Internal base node",true);
modelInfos[MODEL_TYPE::VBIC].instanceParams.emplace_back("basebinode",229,SIM_MODEL::PARAM::DIR_OUT,SIM_VALUE::TYPE_INT,"",SIM_MODEL::PARAM::CATEGORY::SUPERFLUOUS,"","","Internal base node",true);
modelInfos[MODEL_TYPE::VBIC].instanceParams.emplace_back("basebpnode",230,SIM_MODEL::PARAM::DIR_OUT,SIM_VALUE::TYPE_INT,"",SIM_MODEL::PARAM::CATEGORY::SUPERFLUOUS,"","","Internal base node",true);
modelInfos[MODEL_TYPE::VBIC].instanceParams.emplace_back("gm",239,SIM_MODEL::PARAM::DIR_OUT,SIM_VALUE::TYPE_FLOAT,"",SIM_MODEL::PARAM::CATEGORY::SUPERFLUOUS,"","","Small signal transconductance dIc/dVbe",true);
modelInfos[MODEL_TYPE::VBIC].instanceParams.emplace_back("go",240,SIM_MODEL::PARAM::DIR_OUT,SIM_VALUE::TYPE_FLOAT,"",SIM_MODEL::PARAM::CATEGORY::SUPERFLUOUS,"","","Small signal output conductance dIc/dVbc",true);
modelInfos[MODEL_TYPE::VBIC].instanceParams.emplace_back("gpi",241,SIM_MODEL::PARAM::DIR_OUT,SIM_VALUE::TYPE_FLOAT,"",SIM_MODEL::PARAM::CATEGORY::SUPERFLUOUS,"","","Small signal input conductance dIb/dVbe",true);
modelInfos[MODEL_TYPE::VBIC].instanceParams.emplace_back("gmu",242,SIM_MODEL::PARAM::DIR_OUT,SIM_VALUE::TYPE_FLOAT,"",SIM_MODEL::PARAM::CATEGORY::SUPERFLUOUS,"","","Small signal conductance dIb/dVbc",true);
modelInfos[MODEL_TYPE::VBIC].instanceParams.emplace_back("gx",243,SIM_MODEL::PARAM::DIR_OUT,SIM_VALUE::TYPE_FLOAT,"",SIM_MODEL::PARAM::CATEGORY::SUPERFLUOUS,"","","Conductance from base to internal base",true);
modelInfos[MODEL_TYPE::VBIC].instanceParams.emplace_back("cbe",257,SIM_MODEL::PARAM::DIR_OUT,SIM_VALUE::TYPE_FLOAT,"F",SIM_MODEL::PARAM::CATEGORY::SUPERFLUOUS,"","","Internal base to emitter capacitance",true);
modelInfos[MODEL_TYPE::VBIC].instanceParams.emplace_back("cbex",258,SIM_MODEL::PARAM::DIR_OUT,SIM_VALUE::TYPE_FLOAT,"F",SIM_MODEL::PARAM::CATEGORY::SUPERFLUOUS,"","","External base to emitter capacitance",true);
modelInfos[MODEL_TYPE::VBIC].instanceParams.emplace_back("cbc",259,SIM_MODEL::PARAM::DIR_OUT,SIM_VALUE::TYPE_FLOAT,"F",SIM_MODEL::PARAM::CATEGORY::SUPERFLUOUS,"","","Internal base to collector capacitance",true);
modelInfos[MODEL_TYPE::VBIC].instanceParams.emplace_back("cbcx",260,SIM_MODEL::PARAM::DIR_OUT,SIM_VALUE::TYPE_FLOAT,"F",SIM_MODEL::PARAM::CATEGORY::SUPERFLUOUS,"","","External Base to collector capacitance",true);
modelInfos[MODEL_TYPE::VBIC].instanceParams.emplace_back("cbep",261,SIM_MODEL::PARAM::DIR_OUT,SIM_VALUE::TYPE_FLOAT,"F",SIM_MODEL::PARAM::CATEGORY::SUPERFLUOUS,"","","Parasitic Base to emitter capacitance",true);
modelInfos[MODEL_TYPE::VBIC].instanceParams.emplace_back("cbcp",262,SIM_MODEL::PARAM::DIR_OUT,SIM_VALUE::TYPE_FLOAT,"F",SIM_MODEL::PARAM::CATEGORY::SUPERFLUOUS,"","","Parasitic Base to collector capacitance",true);
modelInfos[MODEL_TYPE::VBIC].instanceParams.emplace_back("cqbe",245,SIM_MODEL::PARAM::DIR_OUT,SIM_VALUE::TYPE_FLOAT,"F",SIM_MODEL::PARAM::CATEGORY::SUPERFLUOUS,"","","Cap. due to charge storage in B-E jct.",true);
modelInfos[MODEL_TYPE::VBIC].instanceParams.emplace_back("cqbc",247,SIM_MODEL::PARAM::DIR_OUT,SIM_VALUE::TYPE_FLOAT,"F",SIM_MODEL::PARAM::CATEGORY::SUPERFLUOUS,"","","Cap. due to charge storage in B-C jct.",true);
modelInfos[MODEL_TYPE::VBIC].instanceParams.emplace_back("cqbx",249,SIM_MODEL::PARAM::DIR_OUT,SIM_VALUE::TYPE_FLOAT,"F",SIM_MODEL::PARAM::CATEGORY::SUPERFLUOUS,"","","Cap. due to charge storage in B-X jct.",true);